Single-puls coherent anti-stokes raman scattering microscopy and spectroscopy
Abstract
A method and system are presented for producing an output coherent anti-stokes Raman scattering (CARS) signal of a medium. The method comprises generation of a unitary optical excitation pulse that carries a pump photon, a Stokes photon and a probe photon; and inducing a CARS process in the medium by exciting the medium by the at least one such unitary optical excitation pulse.

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41 claims: 13 independent, 28 dependent
- 1A method for producing an output coherent anti-stokes Raman scattering (CARS) signal of a medium, the method comprising:(i) producing a unitary optical excitation pulse (220) that carries a pump photon, a Stokes photon and a probe photon, by generating a spectral phase coherent optical pulse (210) carrying the pump, Stokes and probe photons and applying a predetermined shaping to the spectral phase coherent optical pulse (210);and (ii) inducing a CARS process in the medium by exciting the medium by the at least one unitary optical excitation pulse (220);the method being characterized in that : the shaping of the spectral phase coherent optical pulse (210) comprises affecting polarization of said pulse to produce a broadband pump component and a narrow-band probe component having a substantially orthogonal polarizations.
- 17The method of any one of claims 1 to 14, for use in CARS microscopy of a target material constituted of molecules producing an output CARS signal (211), the method comprising:focusing said at least one unitary optical excitation pulse (220) onto the medium, thereby exciting the medium to produce the output CARS signal (211) of the molecules;and providing a relative displacement between the medium and the exciting beam to thereby enable scanning of the medium by the unitary excitation pulse beam.
- 18A system (200, 150) for use in measuring an output coherent anti-stokes Raman scattering (CARS) signal (211) of a medium, the system (200, 150) characterized by a single laser (21) operable to generate at least one spectral phase coherent optical pulse (210) carrying a pump photon, a Stokes photon and a probe photon;and a programmable pulse shaper (22) for receiving the spectral phase coherent optical pulse (210) and shaping it to produce a unitary optical excitation pulse (220), the programmable pulse shaper (22) being configured to affect polarization of the spectral phase coherent optical pulse (210) to produce a broadband pump component and a narrow-band probe component having substantially orthogonal polarizations.
- 23The system (200, 150) of any one of claims 19-22, wherein said programmable pulse shaper (22) comprises a polarization control assembly operable to affect the polarization by applying a polarization rotation to the predetermined wavelength components of the spectral phase coherent pulse and thereby produce the broadband pump component and the narrow-band probe component having substantially orthogonal polarizations, and to apply a cross polarization filtering to a signal propagating from the medium to the detector for extraction of the cross-polarized CARS signal (211).
Independent claims13
133 paragraphs in 5 sections, as filed
FIELD OF THE INVENTION
0001The present invention relates to Raman spectroscopy and microscopy, and in particular, to coherent anti-stokes Raman spectroscopy and microscopy.
BACKGROUND OF THE INVENTION
0002In coherent nonlinear spectroscopy, the sample is probed by measuring processes of energy exchange between photons interacting with the sample. One of the most common nonlinear spectroscopy methods is coherent anti-stokes Raman scattering (CARS), a coherent four-wave mixing process involving the generation of a coherent vibration in the probed medium. In CARS, three laser photons, a pump photon (ω<i><sub>p</sub></i>) a probe photon (ω<i><sub>pr</sub></i>) and the Stokes photon (ω<i><sub>s</sub></i>), overlap in the medium under investigation. By nonlinear interaction with the molecules a fourth coherent photon (ω<i><sub>AS</sub></i>) with the anti-Stokes frequency ω<i><sub>AS</sub></i> = ω<i>p</i> - ω<i><sub>s</sub></i> + ω<i><sub>pr</sub></i> is generated.
0003The CARS process can be visualized in a molecular energy level diagram as depicted in <figref idref="f0001"><b>Fig. 1</b></figref><b>,</b> where |i> and |g> are molecular rovibrational states, and |α> and |β> are virtual levels. Resonant enhancement of the CARS process occurs when the frequency difference Ω<i><sub>R</sub></i> =ω<i><sub>p</sub> -</i> ω<i><sub>s</sub></i> coincides with a vibrational level of the medium.
0004The CARS process, as a coherent scattering process, has to fulfill a phase matching condition, which is equivalent to momentum conservation of the photons involved. With the wave vectors of the pump photon (<i>k<sub>p</sub></i>), the probe photon (<i>k<sub>pr</sub></i>) and the Stokes photon (<i>k<sub>S</sub></i>), the wave vector of the Raman signal can be obtained by <maths id="math0001" num=""><math display="block"><msub><mi mathvariant="italic">k</mi><mi mathvariant="italic">AS</mi></msub><mo mathvariant="italic">=</mo><msub><mi mathvariant="italic">k</mi><mi mathvariant="italic">pr</mi></msub><mo mathvariant="italic">+</mo><mfenced separators=""><msub><mi mathvariant="italic">k</mi><mi mathvariant="italic">P</mi></msub><mo mathvariant="italic">-</mo><msub><mi mathvariant="italic">k</mi><mi mathvariant="italic">S</mi></msub></mfenced><mspace width="1em" /><mi mathvariant="italic">or</mi><mspace width="1em" /><msub><mi mathvariant="italic">k</mi><mi mathvariant="italic">P</mi></msub><mo mathvariant="italic">+</mo><msub><mi mathvariant="italic">k</mi><mi mathvariant="italic">pr</mi></msub><mo mathvariant="italic">=</mo><msub><mi mathvariant="italic">k</mi><mi mathvariant="italic">AS</mi></msub><mo mathvariant="italic">+</mo><msub><mi mathvariant="italic">k</mi><mi mathvariant="italic">S</mi></msub><mn mathvariant="italic">.</mn></math><img file="EP1588152B1_D0001.tif" /></maths>
0005In general, there are two conventional different techniques utilizing a multi-beam excitation scheme for measuring a CARS spectrum, as disclosed, for example, in <patcit id="pcit0001" dnum="US4077719A"><text>U.S. Pat. Nos. 4,077,719</text></patcit>; <patcit id="pcit0002" dnum="US4084100A"><text>4,084,100</text></patcit>; <patcit id="pcit0003" dnum="US4405237A"><text>4,405,237</text></patcit>; and <patcit id="pcit0004" dnum="US4512660A"><text>4,512,660</text></patcit>; and in <patcit id="pcit0005" dnum="WO0248660A"><text>WO 02/48660</text></patcit>.
0006According to the first technique, the so-called scanning CARS, two narrow bandwidth lasers at ω<sub>p</sub> and at ω<sub>s</sub> (having spectral width of the order of the typical linewidth of Raman levels, i.e., 1 cm<sup>-1</sup>) are tuned over the Raman resonances of the probed species to generate a signal at <i>2</i>ω<i><sub>p</sub></i> - ω<i><sub>s</sub></i> (in this case ω<i><sub>pr</sub></i> = ω<i><sub>s</sub></i>). The spectral resolution of this technique is mainly determined by the bandwidth of the applied laser sources.
0007According to the second technique, broadband or multiplex CARS, a broadband Stokes beam (spectral width typical 100 -1000cm<sup>-1</sup>) can be used to excite several Raman transitions under investigations simultaneously. The use of a narrow band probe and a broadband Stokes beam enables simultaneous measurement of the entire band of the Raman spectrum (see, for example, "<nplcit id="ncit0001" npl-type="b"><text>Infrared and Raman Spectroscopy," edited by B. Schrader, VCH, Weinheim, 1995</text></nplcit>). The spectral resolution of this technique is usually achieved by using a monochromator and a multichannel detection system. Thus, one laser shot is utilized to measure the entire CARS spectrum.
0008Another possibility to obtain multiplex CARS spectra is to use a time-resolved CARS scheme. In this technique, two relatively broadband exciting pulses are used for simultaneously populating several Raman levels. The spectral data is obtained by measuring the interference pattern of the CARS signal from a third, delayed broadband probe pulse (see, for example, an article of <nplcit id="ncit0002" npl-type="s"><text>Leonhardt et al., published in Chem. Phys. Lett., 1987, V 133, P. 373</text></nplcit>).
0009Coherent Raman processes have become a valuable tool in the past few decades in femtosecond time-resolved spectroscopy, as well as in combustion studies and condensed-state spectroscopy. For example, <nplcit id="ncit0003" npl-type="s"><text>Leonhardt et al. describes in Chem. Phys. Lett. 1987, V. 133, P. 373</text></nplcit> the measurements of the energy difference and the lifetimes of two (or more) Raman levels by Fourier-decomposing the quantum beats of the CARS signal using femtosecond pulses. This scheme has been recently used to analyze the energy-level diagram of complex molecules.
0010CARS has recently become a favorable technique for nonlinear depth-resolved microscopy (see, for example, <patcit id="pcit0006" dnum="US6108081A"><text>U.S. Pat. No. 6,108,081</text></patcit>; <patcit id="pcit0007" dnum="WO0206778A"><text>WO 02/06778</text></patcit>; and scientific articles <nplcit id="ncit0004" npl-type="s"><text>Zumbusch et al., Phys. Rev. Lett., 1999, V. 82, P. 4142</text></nplcit>; <nplcit id="ncit0005" npl-type="s"><text>Hashimoto et al., Opt. Lett., 2000, V. 25, P. 1768</text></nplcit>; and <nplcit id="ncit0006" npl-type="s"><text>Volkmer at al., Applied Phys. Lett., 2002, V. 80, P. 1505</text></nplcit>). CARS microscopy has the potential, for example, for studying live biological specimens while gathering three-dimensional information on their molecular constitution. However, the these CARS microscopes also require two or three narrow-band sources that must be all tightly synchronized and also tunable within the Raman energy range.
0011It should be appreciated that the signal of CARS (being a result of a nonlinear process) is stronger with short intense pulses. However, the femtosecond CARS techniques suffer from two major difficulties. First, there is an increased strong background signal typically due to the electronic contributions to the third-order susceptibility, both from the sample and from the surrounding medium (i.e., solvent). The second difficulty is associated with a lack of selectivity between neighboring energy levels, due to the large bandwidth of the pulses.
0012These problems can be solved by coherent quantum control methods. The concept of coherent quantum control of a quantum system is based on the achievement of constructive interference between different quantum paths leading to a desirable outcome, while interfering destructively with paths leading to other outcomes. While schemes of coherent control may involve excitations by continuous waves, most available techniques are also known which involve ultrashort optical pulses. With the recent progress in ultrafast optics, it is now possible to shape ultrashort signals with desired spectral shapes (see, for example, <patcit id="pcit0008" dnum="US6327068B"><text>U.S. Pat. No. 6,327,068</text></patcit> assigned to the assignee of the present application).
0013The inventors of the present invention have recently shown how coherent control techniques can be exploited to improve the CARS spectroscopy employing three femtosecond pulses related to the pump, Stokes and probe beams, respectively Two approaches have been described for controlling the CARS process. According to the first approach ("<nplcit id="ncit0007" npl-type="s"><text>Quantum Control of Coherent anti-Stokes Raman Processes" by Oron et al., published in Phys. Rev. A, 2002, V. 65, P. 43408</text></nplcit>), a periodic phase modulation is used to control the population induced by broadband pulses. By shaping both the pump and the Stokes pulses with an appropriate spectral phase function, the nonresonant CARS background has been greatly reduced. This technique also allows for exciting just one out of many vibrational levels, even when all of them are within the spectral bandwidth of the excitation pulses. According to the second approach ("<nplcit id="ncit0008" npl-type="s"><text>Narrow-Band Coherent Anti-Stokes Raman signals from Broad-Band Pulses" by Oron et al., published in Phys. Rev. Lett., 2002, V. 88, P. 63004</text></nplcit>), only the probe pulse is shaped, thereby enabling enhancement of the resolution of the measured CARS spectrum. The achieved spectral resolution becomes significantly better than the bandwidth of the readout pulse. In particular, by tailoring the phase of a 100 femtosecond probe pulse, a narrow-band CARS spectroscopy resonant signal has been obtained with a width or less than 15cm<sup>-1</sup>, which is an order of magnitude narrower than the CARS signal from an unshaped, transform limited pulse (all frequency components having the same phase).
0014The inventors have also recently shown that the availability of ultrashort (femtosecond) optical pulses with durations shorter than typical molecular vibration periods enable the coherent excitation of molecular vibrations using a single pulse. The inventors performed single-pulse vibrational spectroscopy on several molecules in the liquid phase, where both the excitation and the readout processes were performed by the same pulse ("<nplcit id="ncit0009" npl-type="s"><text>Single-pulse coherently controlled nonlinear Raman spectroscopy and microscopy, Nirit Dudovich, Dan Oron and Yaron Silberberg, Nature, Vol. 418, pages 512-514, 2002</text></nplcit>). High spectral resolution, nearly two orders of magnitude better than the pulse bandwidth, was achieved by using quantum coherent control techniques with appropriate modulation of the spectral phase of the pulse, thus exploiting the quantum interference between multiple paths to selectively populate a given vibrational level, and to probe this population using the same pulse.
SUMMARY OF THE INVENTION
0015There is a need in the art to facilitate coherent anti-stokes Raman scattering (CARS) spectroscopy and microscopy by providing a novel method and system for producing an exciting signal to induce a CARS process in a medium.
0016The main idea of the present invention consists of inducing a CARS process in a medium (i.e., providing a CARS spectrum of the medium) by exciting the medium with a single pulse carrying a pump photon, a Stokes photon and a probe photon. In other words, the technique of the present invention provides for supplying three interacting photons (the pump photon, Stokes photon and probe photon) by the same unitary excitation pulse. This enables the system operation with a single laser source generating a transform limited femtosecond pulse.
0017It should be understood that the term <i>"transform limited pulse"</i> used herein actually signifies a pulse resulted from phasing the modes of a compressible phase coherent pulse, and can therefore be termed also as a <i>"spectral phase coherent"</i> or <i>"compressible to a transform limited"</i> pulse.
0018The present invention provides various coherent-control techniques consisting of shaping the spectral phase coherent (transform limited) broadband pulse (carrying a pump photon, a Stokes photon and a probe photon) to produce a unitary optical excitation pulse enabling identification of a CARS signal induced by this pulse from any other optical signal.
0019The present invention provides for designing a single-pulse CARS spectrometer or microscope free of the two aforementioned difficulties, and for achieving high spectral resolutions and diminishing the detrimental effects of the nonresonant background.
0020The concept of the present invention for performing a nonlinear optical interaction with a matter in a single coherently controlled pulse offers a promising alternative to the conventional multi-beam nonlinear systems in use today.
0021Thus, according to one aspect of the present invention, there is provided a method for producing an output coherent anti-stokes Raman scattering (CARS) signal of a medium, the method comprising: (i) producing a unitary optical excitation pulse that carries a pump photon, a Stokes photon and a probe photon; and (ii) inducing a CARS process in the medium by exciting the medium by the at least one unitary optical excitation pulse.
0022The unitary optical excitation pulse carrying the pump, Stokes and probe photons is produced by generating a spectral phase coherent optical pulse carrying the pump, Stokes and probe photons; and applying a predetermined shaping to the spectral phase coherent optical pulse.
0023The shaping of the spectral phase coherent optical pulse may comprise blocking wavelengths shorter than a predetermined wavelength in said pulse. This predetermined wavelength is defined by a spectral bandwidth in which the output CARS signal is likely to occur.
0024The shaping of the spectral phase coherent (transform limited) optical pulse may comprise assigning a desired phase to each wavelength component of the transform limited optical pulse. The assigning of the desired phase is preferably carried out is addition to the blocking of wavelengths shorter than the predetermined wavelength. The assigning of the desired phase preferably includes modulating a spectral phase of the transform limited optical pulse by using a desired spectral phase function. The desired spectral phase function may be a periodic function, or may be formed by at least one phase gate having a bandwidth substantially narrower than the bandwidth of the unitary excitation pulse to be produced. The phase gate may for example be a π phase gate, e.g., with the bandwidth in the range of about 0.5nm to 3nm. The π phase gate is preferably spectrally located in the vicinity of a short wavelength end of the excitation pulse to be produced.
0025The above shaping can be implemented by passing the spectral phase coherent pulse through a Spatial Light Modulator (SLM).
0026Alternatively or additionally to the phase modulation, the shaping may comprise application of polarization control to the spectral phase coherent pulse consisting of 90 degree polarization rotation of predetermined wavelengths of the pulse. This results in that the input spectral phase coherent pulse is split into a broadband pump component and a narrow-band probe component having substantially orthogonal polarizations.
0027According to another aspect of the invention, there is provided a pulse creation method for use in coherent anti-stokes Raman scattering (CARS) spectroscopy or microscopy, the method comprising: utilizing a single laser operable to generate a spectral phase coherent optical pulse carrying a pump photon, a Stokes photon and a probe photon, and applying a predetermined shaping to the spectral phase coherent optical pulse to produce a unitary optical excitation pulse.
0028According to yet another aspect of the invention, there is provided a method for coherent anti-stokes Raman scattering (CARS) spectroscopy of a medium constituted of molecules capable of producing an output CARS signal, comprising: <ol id="ol0001" compact="compact" ol-style=""><li><b>(a)</b> producing at least one unitary optical excitation pulse that carries a pump photon, a Stokes photon and a probe photon;</li><li><b>(b)</b> focusing said at least one unitary optical excitation pulse onto the medium, thereby exciting the medium to produce the output CARS signal of the molecules; and</li><li><b>(c)</b> measuring said output CARS signal.</li></ol>
0029According to yet another aspect of the invention, there is provided a method for coherent anti-stokes Raman scattering (CARS) microscopy of a target material constituted of molecules producing an output CARS signal, the method comprising: <ul id="ul0001" list-style="none" compact="compact"><li>producing at least one unitary optical excitation pulse that carries a pump photon, a Stokes photon and a probe photon;</li><li>focusing said at least one unitary optical excitation pulse onto the medium, thereby exciting the medium to produce the output CARS signal of the molecules;</li><li>providing a relative displacement between the medium and the exciting beam to thereby enable scanning of the medium by the unitary excitation pulse beam.</li></ul>
0030The invention according to its yet another aspect provides a system for use in measuring an output coherent anti-stokes Raman scattering (CARS) signal of a medium, the system comprising a single laser operable to generate at least one spectral phase coherent optical pulse carrying a pump photon, a Stokes photon and a probe photon, and a programmable pulse shaper for receiving the spectral phase coherent optical pulse and shaping it to produce a unitary optical excitation pulse.
0031There has thus been outlined, rather broadly, the more important features of the invention in order that the detailed description thereof that follows hereinafter may be better understood. Additional details and advantages of the invention will be set forth in the detailed description, and in part will be appreciated from the description, or may be learned by practice of the invention.
BRIEF DESCRIPTION OF THE DRAWINGS
0032In order to understand the invention and to see how it may be carried out in practice, preferred embodiments will now be described, by way of non-limiting example only, with reference to the accompanying drawings, in which: <ul id="ul0002" list-style="none" compact="compact"><li><figref idref="f0001"><b>Fig. 1</b></figref> is an energy level diagram of the typical CARS process;</li><li><figref idref="f0001"><b>Fig. 2A</b></figref> illustrates a schematic view of a known single-pulse CARS spectrometer system;</li><li><figref idref="f0001"><b>Fig. 2B</b></figref> illustrates a schematic view of a single-pulse CARS spectrometer system, according to the invention;</li><li><figref idref="f0002"><b>Fig. 3A to 3C</b></figref> illustrate effect of a modulated spectral phase function on the temporal shape of the pulse and on the population amplitude;</li><li><figref idref="f0003"><b>Fig. 4A to 4C</b></figref> illustrate examples of measurements of the Raman spectra obtained by varying the phase function periodicity;</li><li><figref idref="f0004"><b>Fig. 5A and 5B</b></figref> illustrate the nonresonant background suppression by using periodic spectral function with additional harmonics;</li><li><figref idref="f0005"><b>Fig. 6A to 6C</b></figref> illustrate effect of a π phase gate phase function on the temporal shape of the pulse and on the population amplitude;</li><li><figref idref="f0006"><b>Fig. 7A to 7D</b></figref> are examples of a numerical simulation illustrating the effect of the phase control by using an excitation phase with a narrow-band phase gate.</li><li><figref idref="f0007"><b>Fig. 8A and 8B</b></figref> illustrate measured normalized CARS spectra by using a transform limited pulse a phase gate shaped pulse for methanol and iodomethane, correspondingly;</li><li><figref idref="f0008"><b>Fig. 9A to 9D</b></figref> illustrate the normalized spectral intensity derived from the measured CARS spectra along with those obtained by computer simulations for several materials.</li><li><figref idref="f0009"><b>Fig. 10A to 10D</b></figref> illustrate CARS spectra from iodomethane obtained with polarization -only shaping and plotted for various probe bandwidths;</li><li><figref idref="f0010"><b>Fig. 11</b></figref> shows a schematic drawing of the spectral intensity of a phase and polarization shaped excitation pulse;</li><li><figref idref="f0010"><b>Fig. 12</b></figref> is a schematic drawing of the electric field envelope versus time for phase and polarization shaped pulses;</li><li><figref idref="f0010"><b>Fig. 13A to 13C</b></figref> illustrate CARS spectra from iodomethane obtained with both polarization and phase gate shaping and plotted for various probe bandwidths;</li><li><figref idref="f0011"><b>Fig. 14A to 14C</b></figref> illustrate examples of Raman spectra of several simple molecules obtained with phase and polarization shaped pulses;</li><li><figref idref="f0012"><b>Fig. 15</b></figref> illustrates a schematic view of a single-pulse CARS microscopy system, according to one embodiment of the invention; and</li><li><figref idref="f0013"><b>Fig. 16A to 16D</b></figref> illustrate an example of depth-resolved single-pulse CARS images.</li></ul>
DETAILED DESCRIPTION OF SPECIFIC EMBODIMENTS
0033The present invention provides a method and a CARS system such as spectrometer or microscope carrying out this method based on inducing the entire CARS process by producing a single (unitary) ultrashort optical excitation pulse that supplies all three photons (the pump photon, Stokes photon and probe photon) required for the CARS process.
0034The principles and operation of the CARS spectrometry and microscopy according to the present invention may be better understood with reference to the drawings and the accompanying description, it being understood that these drawings and examples in the description are given for illustrative purposes only and are not meant to be limiting. The same reference numerals will be utilized for identifying those components which are common in the CARS spectrometer and microscope systems shown in the drawings throughout the present description of the invention.
0035It should be noted that the inducing of the entire CARS process by a single excitation pulse is feasible when the pulse duration is shorter than the vibrational period of the molecules of the medium under investigation. For example, a length of this excitation pulse can be in a femtosecond range. In this case, the CARS signal is produced by an intra-pulse four-wave mixing process. Each of the different components of the CARS signal is the resultant of the interference of all the quantum paths that contribute to the nonlinear polarization process.
0036It should also be noted that inducing the CARS process with a single excitation pulse is associated with several inherent difficulties. First of all, a technical difficulty arises from the partial spectral overlap between the spectral bands of the excitation pulse and the CARS signal, which can be orders of magnitude weaker than the pulse signal.
0037This difficulty, according to one embodiment of the invention, can be overcame by means of a partial blocking of the excitation pulse spectrum in the range of the expected CARS signal, and an appropriate spectral filtering of the measured CARS signal.
0038Moreover, if a medium is excited by a single spectral phase coherent or transform limited pulse (i.e., a pulse in which all frequency components have the same phase), then the CARS process can encounter the following difficulties:
0039One of the difficulties arises from the fact that all vibrational levels having the energy within the bandwidth of the transform limited pulse are excited. As a result, the spectral resolution of the CARS signal is limited by the excitation pulse bandwidth.
0040Another known difficulty, which is common to all CARS techniques utilizing femtosecond pulses and is therefore relevant also to the single-pulse CARS spectrometer and method of the present invention, results from a strong nonresonant background signal. As the bandwidth of the excitation pulse is increased (in other words, as the shorter excitation pulse having higher peak intensity is used), the magnitude of the background signal increases much more rapidly than the resonant CARS signal. The nonresonant background signal thus can be detrimental to the ability to spectrally resolve resonant transitions.
0041The present invention provides for eliminating the above difficulties by applying a quantum coherent control technique to the transform limited (spectral phase coherent) optical pulse. According to the invention, the quantum coherent control is achieved by means of a predetermined shaping of the transform limited pulse to produce a unitary optical excitation pulse that enables identification of a CARS signal induced by this pulse from any other optical signals.
0042Referring to <figref idref="f0001"><b>Fig. 2A</b></figref><b>,</b> there is schematically illustrated a known CARS measurement system (spectrometer) <b>20</b> associated with a sample holder <b>29</b> containing a medium under investigation. The CARS spectrometer system <b>20</b> includes a single laser <b>21</b> adapted for producing optical transform-limited driving pulses <b>210</b> wherein each such pulse carries a pump photon, a Stokes photon and a probe photon which are necessary for exciting the medium and inducing the CARS process therein, a programmable pulse shaper <b>22</b> operable for shaping the input spectral phase coherent driving pulse to produce a unitary optical excitation pulse carrying the pump, Stokes and probe photons, a detector unit <b>26</b> for collecting a CARS signal coming from the medium and generating data indicative thereof, and a light directing optics for directing the input pulses to the medium and directing the CARS signal to the detector.
0043The laser <b>21</b> can be any laser capable to generate spectral phase coherent pulses in a femtosecond (fs) time range. For example, the spectral phase coherent pulses can be in a range of about 5fs to 100fs and, preferably, between 10fs and 20fs). For example, a Ti:Sapphire laser oscillator capable of generating 20fs full-width at half maximum (FWHM) spectral phase coherent pulses at 80MHz, centered at 815nm (corresponding to a bandwidth of about 75nm or an energy span of 100cm<sup>-1</sup>) can be employed for the purpose of the present invention. The programmable pulse shaper <b>22</b> is configured for shaping the input spectral phase coherent driving pulses by assigning a desired phase to each wavelength component of the spectral phase coherent optical pulse, preferably only in a predetermined wavelength range, i.e., outside that where the CARS signal is most likely to occur. The use of such a pulse shaper enables for coherently controlling the CARS process.
0044A sample of the input spectral phase coherent pulse <b>210</b> generated by the laser <b>21</b> is directed to the pulse shaper assembly <b>22</b> by a mirror <b>23a,</b> and a shaped pulse <b>220</b> produced by the shaper assembly <b>22</b> is directed to the holder <b>29</b> by a further mirror <b>23b.</b> Obviously, each of these single-mirror elements of the light directing optics may be replaced by one or more beam splitter and/or a set of mirrors, or any other known light deflecting means.
0045In the present example of <figref idref="f0001">Fig. 2A</figref>, the programmable pulse shaper <b>22</b> is a 4-f shaper that includes an input dispersive assembly <b>221,</b> an output dispersive assembly <b>222;</b> an input focusing element <b>223,</b> an output focusing element <b>224;</b> and a programmable Spatial Light Modulator (SLM) <b>226</b> located at the Fourier plane defined by the focusing elements <b>223</b> and <b>224.</b> In the present example, also provided in the pulse shaper <b>22</b> is a blocking element <b>225.</b>
0046For example, the dispersive assemblies <b>221, 222</b> can be in the form of thin ruled reflective gratings with 1200 lines/mm, and the focusing elements <b>223, 224</b> can be achromat lenses (e.g., with a focal length of 100 mm). Though the above embodiment uses ruled reflective gratings at the input and output of the pulse shaper to spatially disperse and recombine the various frequency components of the pulses, it should be pointed out that any other suitable dispersive elements can be used, e.g., transmission gratings, prisms, or combinations thereof. Furthermore, the function of the focusing elements <b>223, 224</b> in defining the system Fourier plane (focal plane) at which the SLM <b>226</b> is located, can be fulfilled by any other element having positive focusing power, e.g., a concave mirror.
0047The blocking element <b>225</b> is, for example, a plate arranged for blocking at the Fourier plane wavelengths shorter than a predetermined wavelength (e.g., 780nm) in the range of a CARS signal, as they can spectrally overlap an output CARS signal <b>211.</b> In the present example of <figref idref="f0001">Fig. 2A</figref>, the blocking element <b>225</b> is arranged between the SLM <b>226</b> and the output focusing element <b>224.</b> However, as can be appreciated by a person skilled in the art, the blocking element <b>225</b> can be arranged either upstream or downstream of the SLM <b>226.</b> Furthermore, the function of blocking element <b>225</b> can be fulfilled by any sharp-edge long-pass filter, e.g., a dielectric filter.
0048The programmable SLM <b>226</b> may be a liquid crystal based SLM of the type described by <nplcit id="ncit0010" npl-type="s"><text>A. M. Weiner in the article published in Rev. Sci. Inst., 2000, V. 71, P. 1929</text></nplcit>. This SLM includes an SLM pixel array having 128 pixels at its Fourier plane. The spectral resolution, determined by the spot size at the Fourier plane, can be better than 0.5nm (equivalent to about 8cm<sup>-1</sup>).
0049The operation of the 4-f pulse shaper <b>22</b> is as follows. The input dispersive element <b>221</b> operates to spatially separate the frequency components of the input spectral phase coherent pulse. The input focusing element <b>223</b> focuses each of these frequency components to its specific position at the focal plane, where the SLM <b>226</b> is located. The blocking element <b>225</b> blocks at the Fourier plane wavelengths shorter than the predetermined wavelength. The SLM <b>226</b> is operative as an updateable filter for spectral manipulation of the incoming pulses, and allows the independent control of the phase and amplitude of each of the light components passing through 128 pixels, thereby modifying the pulse shape and temporal profile according to the desired pulse properties. For example, the width of each pixel is 97µm, the inter-pixel gap is 3µm, while the spot size at the focal plane is about 80µm. The output focusing element <b>224</b> and output dispersive element <b>222</b> then recombine each of the separate frequency components to produce a shaped pulse <b>220.</b>
0050Thus, the programmable pulse shaper <b>22</b> of <figref idref="f0001">Fig. 2A</figref> is operable by a suitable control unit <b>27</b> for separating between different frequency components of the input pulse, blocking the predetermined frequencies (higher frequencies, which can overlap the CARS signal); and assigning the desired phase to each frequency component of the remaining (non-blocked) portion of the input pulse by using any desired spectral phase function.
0051The CARS spectrometer system <b>20</b> may utilize an open loop control, in which the applied spectral phase function is derived theoretically for each experiment, or may utilize a closed feedback loop for determining the applied spectral phase function.
0052The shaped pulse <b>220</b> produced by the pulse shaper <b>22</b> carries a pump photon, a Stokes photon and a probe photon (which are necessary for exciting the medium and inducing the CARS process therein) and is therefore also referred to as "the unitary optical excitation pulse".
0053The unitary optical excitation pulse <b>220</b> reflected from the mirror <b>23b</b> is focused by a focusing assembly <b>24a</b> onto the medium under investigation for exciting it and inducing a CARS process. In the present example, the focusing assembly <b>24a</b> includes an objective lens arrangement having a 0.2 numerical aperture (NA).
0054The light directing optics further includes a lens assembly <b>24b</b> accommodated for collection of the output CARS signal of the medium. This lens assembly <b>24b,</b> preferably, has a numerical aperture similar or larger than that of the lens <b>24a.</b> It should be noted that the focusing assembly <b>24a</b> can also serve as a collecting optics in a back-scattered mode.
0055Further provide in the CARS spectrometer system <b>20</b> is a filtering assembly <b>25</b> operable for filtering the CARS signal obtained from the medium. In the present example, the filtering assembly <b>25</b> includes a spectral filter <b>251</b> (e.g., a bandpass or short-pass filter), and preferably includes a computer-controlled monochromator <b>252</b> or a spectrograph (not shown). An example of the filter <b>251</b> includes, but is not limited to, a 40nm FWHM bandpass filter centered at 750nm, while an example of the computer-controlled monochromator <b>252</b> includes, but is not limited to, a computer-controlled monochromator with a spectral resolution of 0.5nm (equivalent to about 8cm<sup>-1</sup> at 750nm).
0056The filtered output of the filtering assembly <b>25</b> is collected by the detector unit <b>26,</b> which includes a detector <b>261</b> of the kind receiving a light signal and generating an electrical output indicative thereof, and may also include a lock-in amplifier <b>262</b> operable by the control unit (computer) <b>27.</b>
0057It should be appreciated that the construction and operation of the filter <b>251,</b> monochromator <b>252,</b> detector <b>261</b> and a lock-in amplifier <b>262</b> as well as the elements of the light directing optics, are known <i>per se</i>, and therefore need not be specifically described.
0058It should be noted that the measurable Raman energy range of the system <b>20</b> can, for example, be about 300cm<sup>-1</sup> - 900cm<sup>-1</sup>, that is typical of carbon-halogen bond stretching. The lower limit of the measurable energy range is determined by the need to filter out the excitation pulse, while the upper limit is dictated by the excitation pulse bandwidth. Since the technique does not require electronic resonance with the driving input field, it can be implemented with any broadband optic source <b>21.</b> The measurable Raman energy range of the system <b>20</b> can be extended to the fingerprint region (900cm<sup>-1</sup> - 1500cm<sup>-1</sup>) by using pulses of duration 10fs-20fs, available in the state-of-the-art commercially available lasers.
0059Referring to <figref idref="f0001"><b>Fig. 2B</b></figref><b>,</b> a schematic view of a CARS spectrometer system <b>200</b> according to the present invention is schematically illustrated. The CARS spectrometer system <b>200,</b> distinguishes from the CARS system <b>20</b> shown in <figref idref="f0001">Fig. 2A</figref> in that its shaper assembly, additionally to the phase modulator or as an alternative thereto, comprises a polarization control assembly. The latter includes a frequency-selective filter, such as grating <b>221,</b> and a 90 degree polarization rotator accommodated in the optical path of the frequency components emerging from the filter and operable for applying a 90 degree polarization rotation to the predetermined frequency range of the input spectral phase coherent laser pulse, and comprises a crossed polarizer unit <i>P<sub>y</sub></i> accommodated in the optical path of a signal propagating from the medium to the detector for extraction of the cross-polarized CARS signal.
0060In the present example of <figref idref="f0001">Fig. 2B</figref>, the polarization rotator is constituted by an SLM arrangement <b>226,</b> but it should be understood that any other suitable means can be used (e.g., a half-wavelength assembly). Additionally, in the example of <figref idref="f0001">Fig. 2B</figref>, the polarization control assembly also includes a polarizer <b>P<sub>x</sub></b> accommodated in the optical path of the spectral phase coherent laser pulse propagating towards the shaper assembly. It should however be understood that the provision of this input polarizer <b>P<sub>x</sub></b> is optional, and can be eliminated by using a laser source producing linearly polarized light. In the example of <figref idref="f0001">Fig. 2B</figref>, the SLM unit can be operable for performing both the phase shaping and polarization rotation of the frequency components of the spectral phase coherent pulse. Generally, the phase assembly may comprise only a polarization rotator of any known suitable type. The SLM assembly suitable to be used in the system of the present invention may, for example, be of the type described by <nplcit id="ncit0011" npl-type="s"><text>T. Brixner et al. in the articles published in Opt. Lett., 2001, V. 26, P. 557</text></nplcit> and <nplcit id="ncit0012" npl-type="s"><text>Appl. Phys., 2002, V B74, P. S133</text></nplcit>. Such a programmable liquid crystal SLM <b>226</b> includes two SLM liquid crystal pixel arrays (dual cell SLM) whose preferential axes are at right angles to each other and are rotated by ±45° relative to the polarization of the input laser pulse (denoted as the x direction). Any difference in the applied retardance between the two arrays results in modification of the input pulse polarization. In this technique, the SLM can act as both a controlled spectral phase mask and as a controlled waveplate.
0061Thus, in this specific example, the programmable pulse shaper operates for both assigning the desired phase to each frequency component of the driving laser pulse, and controlling polarization of the pulse. In particular, the polarization control can be used to break the ultrashort input pulse <b>210</b> into a broadband pump and a narrow-band probe with orthogonal polarizations.
0062The nonlinear polarization producing the CARS signal driven by an electric field of the excitation pulse whose spectrum is <i>E(</i>ω<i>)</i> can be approximated for <i>nonresonant</i> transitions, by using time dependent perturbation theory, as (for more details see, for example, <nplcit id="ncit0013" npl-type="s"><text>Oron et al., Phys. Rev. Lett., 2002, V. 88, P. 63004</text></nplcit>): <maths id="math0002" num="(1)"><math display="block"><msubsup><mi>P</mi><mrow><mi>n</mi><mo></mo><mi>r</mi></mrow><mfenced><mn>3</mn></mfenced></msubsup><mo>∝</mo><munderover><mo>∫</mo><mn>0</mn><mi>∞</mi></munderover><mi>d</mi><mo></mo><mi>Ω</mi><mo></mo><mi>E</mi><mo></mo><mfenced separators=""><mi>ω</mi><mo>-</mo><mi mathvariant="normal">Ω</mi></mfenced><mo></mo><mi>A</mi><mrow><mo>(</mo><mi mathvariant="normal">Ω</mi><mo>)</mo><mo>,</mo></mrow></math><img file="EP1588152B1_D0002.tif" /></maths> where <maths id="math0003" num=""><math display="inline"><mi>A</mi><mfenced><mi mathvariant="normal">Ω</mi></mfenced><mo>=</mo><msubsup><mo>∫</mo><mn>0</mn><mi>∞</mi></msubsup><mo></mo><msup><mrow><mi>d</mi><mo></mo><mi>ωʹ</mi><mo></mo><mi>E</mi><mo>*</mo><mfenced separators=""><mi>ωʹ</mi><mo>-</mo><mi mathvariant="normal">Ω</mi></mfenced><mo></mo><mi>E</mi><mfenced><mi>ωʹ</mi></mfenced><mo>|</mo></mrow><mn>2</mn></msup></math><img file="EP1588152B1_D0003.tif" /></maths> is the probability amplitude to populate a vibrational level with energy ℏΩ (henceforth, the population amplitude), while <i>E(</i>ω-<i>Ω)</i> represents the probe field.
0063Similarly, the nonlinear polarization for a <i>singly resonant</i> Raman transition through an intermediate level |i> at an energy of ℏΩ<i><sub>R</sub></i> and a bandwidth Γ can be approximated by <maths id="math0004" num="(2)"><math display="block"><msubsup><mi>P</mi><mi>r</mi><mfenced><mn>3</mn></mfenced></msubsup><mo>∝</mo><munderover><mo>∫</mo><mn>0</mn><mi>∞</mi></munderover><mi>d</mi><mo></mo><mi>Ω</mi><mo></mo><mfrac><mrow><mi>E</mi><mo></mo><mfenced separators=""><mi>ω</mi><mo>-</mo><mi mathvariant="normal">Ω</mi></mfenced></mrow><mrow><mfenced separators=""><msub><mi mathvariant="italic">Ω</mi><mi mathvariant="italic">R</mi></msub><mo mathvariant="italic">-</mo><mi mathvariant="italic">Ω</mi></mfenced><mo>+</mo><mi>i</mi><mo></mo><mi>Γ</mi></mrow></mfrac><mo></mo><mi>A</mi><mrow><mo>(</mo><mi mathvariant="normal">Ω</mi><mo>)</mo><mn>.</mn></mrow></math><img file="EP1588152B1_D0004.tif" /></maths>
0064The CARS process can be controlled by controlling the population amplitude A(<i>Ω</i>). The control of A(<i>Ω</i>) is accomplished by controlling the spectral phase of the single broadband excitation pulse. Such a phase-only pulse shaping of the pulse merely means multiplication of the electric field <i>E(</i>ω<i>)</i> (that includes pump, Stockes and probe photons) by a phase function <i>exp(i</i>Φ<i>(</i>ω<i>))</i>.
0065The population of a vibrational level at energy <i>ℏ</i>Ω<i><sub>R</sub></i> is proportional to <maths id="math0005" num="(3)"><math display="block"><msup><mfenced open="|" close="|" separators=""><mi>A</mi><mfenced><mi mathvariant="italic">Ω</mi></mfenced></mfenced><mn>2</mn></msup><mo>=</mo><msup><mfenced open="|" close="|" separators=""><mo>∫</mo><mi>d</mi><mo></mo><mi>ω</mi><mo></mo><mi>E</mi><mfenced><mi>ω</mi></mfenced><mo></mo><mi>E</mi><mo>*</mo><mfenced separators=""><mi>ω</mi><mo>-</mo><msub><mi mathvariant="normal">Ω</mi><mi>R</mi></msub></mfenced></mfenced><mn>2</mn></msup><mo>,</mo></math><img file="EP1588152B1_D0005.tif" /></maths> where <i>E</i> = |<i>E(ω)</i>| <i>exp(iΦ(ω))</i> is the complex spectral amplitudes of the applied field.
0066Each level is thus excited by all frequency pairs separated by Ω<i><sub>R</sub></i>. The interference between the multiple paths leading to the population of the level Ω<i><sub>R</sub></i> is determined by the relative phase of each contribution <i>Φ(ω)-Φ(ω-Ω<sub>R</sub>)</i>. Thus, constructive interference is achieved when <i>Φ(ω)=Φ(ω-Ω<sub>R</sub>)</i> for all frequency components of the excitation pulse. Therefore, if the excitation pulse is a spectral phase coherent or transform-limited pulse (all frequency components having the same phase), then the constructive interference holds for all values of Ω<i><sub>R</sub></i>, thus spectral resolution is lost.
0067According to one example of the phase control, that has been first described by the inventors in an article entitled "<nplcit id="ncit0014" npl-type="s"><text>Single-pulse colzerently-controlled nonlinear Raman spectroscopy and microscopy" published in Nature, V 418, PP. 512-514 (August 2002</text></nplcit>), the spectral phase of the excitation pulse is modulated periodically with a period Ω<i><sub>0</sub></i>. In such a case, the constructive interference can be induced for all energy levels only for Ω<i><sub>R</sub></i> =<i>N</i>Ω<i><sub>0</sub></i> (where N is an integer). <figref idref="f0002"><b>Figs. 3A- 3C</b></figref> illustrate an effect of a modulated spectral phase function on the temporal shape of the pulse and on the population amplitude, according to this specific example of the phase control.
0068<figref idref="f0002"><b>Fig. 3A</b></figref> shows an example of an input pulse spectral intensity <b>31,</b> a spectral phase <b>32</b> of the transform limited pulse, and a modulated spectral phase <b>33</b> of the shaped pulse (unitary excitation pulse). Also shown is a typical spectral region where the CARS signal can be measured. Thus, in order to avoid the spectral overlap between the input pulse and a CARS signal, the power spectrum of the input pulse is blocked at 730nm. (Note that the spectral intensity of the CARS signal is identified by a reference numeral <b>34</b>).
0069<figref idref="f0002"><b>Fig. 3B</b></figref> shows in time domain a temporal intensity of spectral phase coherent pulse <b>35</b> corresponding to the uniform phase (<b>32</b> in <figref idref="f0002">Fig. 3A</figref>), and a modulated phase shaped pulse <b>36</b> corresponding to the modulated phase (<b>33</b> in <figref idref="f0002">Fig. 3A</figref>). As can be understood from <figref idref="f0002">Fig. 3B</figref>, a periodic spectral phase is equivalent to splitting the pulse in time domain to several equally spaced pulses, each delayed by τ<sub>0</sub>=2π/Ω<i><sub>0</sub></i>. This pulse train is capable of resonantly exciting only vibrations with a period <i>T = τ<sub>0</sub></i>/<i>N</i>.
0070<figref idref="f0002"><b>Fig. 3C</b></figref> shows a calculated population amplitude <i>A(Ω)</i> for the spectral phase coherent pulse <b>37</b> and for the pulse having the modulated phase <b>38.</b> As can be seen in <figref idref="f0002">Fig. 3C</figref>, for the case of the spectral phase coherent pulse, the population amplitude decays monotonically versus the vibration energy. On the other hand, for the case of a modulated phase function, an oscillation appears where the peak of each oscillation reaches the spectral phase coherent (transform limited) result.
0071The resonant and nonresonant processes described above have different spectral responses, which result from the different weights that multiply the population amplitude in Eq. (2) and Eq. (3), as determined by the resonance levels.
0072According to Eq. (2), the resonant CARS process can be expressed as <maths id="math0006" num="(4)"><math display="block"><msubsup><mi>P</mi><mi>r</mi><mfenced><mn>3</mn></mfenced></msubsup><mo>≈</mo><mi>C</mi><mo></mo><mfenced open="[" close="]" separators=""><mrow><mi mathvariant="italic">iπE</mi><mo></mo><mfenced separators=""><mi>ω</mi><mo>-</mo><msub><mi mathvariant="normal">Ω</mi><mi>R</mi></msub></mfenced><mo></mo><mi>A</mi><mfenced><msub><mi mathvariant="italic">Ω</mi><mi mathvariant="italic">R</mi></msub></mfenced><mo>+</mo><mi>ζ</mi><mo>]</mo></mrow><munderover><mo>∫</mo><mn>0</mn><mi>∞</mi></munderover><mi mathvariant="italic">dΩ</mi><mo></mo><mfrac><mrow><mi mathvariant="normal">Ω</mi><mo>-</mo><msub><mi mathvariant="normal">Ω</mi><mi>R</mi></msub></mrow><mrow><msup><mfenced separators=""><mi mathvariant="italic">Ω</mi><mo>-</mo><msub><mi mathvariant="italic">Ω</mi><mi mathvariant="italic">R</mi></msub></mfenced><mn>2</mn></msup><mo>-</mo><msubsup><mi>Γ</mi><mi>R</mi><mn>2</mn></msubsup></mrow></mfrac><mo></mo><mi>E</mi><mrow><mo>(</mo><mi>ω</mi><mo mathvariant="normal">-</mo><mi mathvariant="normal">Ω</mi><mo>)</mo><mi>A</mi><mfenced><mi mathvariant="normal">Ω</mi></mfenced></mrow></mfenced></math><img file="EP1588152B1_D0006.tif" /></maths> where ζ is the principal value of Cauchy. The first term in Eq. (4) corresponds to the "on-resonant" contribution, while the second term corresponds to integration over the contribution of the "off resonant" spectral components. The resonant signal thus has a narrow response around Ω=Ω<i><sub>R</sub></i>.
0073The weight function of the integrand of the second term inverts its sign around the resonance, therefore the total contribution of the integral depends on the symmetry of <i>E(ω-Ω)A(Ω)</i> around Ω=Ω<i><sub>R</sub></i>. In the spectral phase coherent (transform limited) case, both <i>A(</i>Ω<i>)</i> and <i>E(</i>ω-Ω<i>)</i> are nearly symmetric for all values of Ω Therefore, the off-resonant term is negligible. The polarization spectrum can be approximated in this case by <maths id="math0007" num="(5)"><math display="block"><msubsup><mi>P</mi><mi>r</mi><mfenced><mn>3</mn></mfenced></msubsup><mo>≈</mo><mi mathvariant="italic">iπC</mi><mo></mo><mi mathvariant="italic">E</mi><mo></mo><mfenced separators=""><mi>ω</mi><mo>-</mo><msub><mi mathvariant="normal">Ω</mi><mi>R</mi></msub></mfenced><mo></mo><mi>A</mi><mfenced><msub><mi mathvariant="normal">Ω</mi><mi>R</mi></msub></mfenced></math><img file="EP1588152B1_D0007.tif" /></maths> which is a replica of the pulse spectrum shifted by Ω<i><sub>R</sub></i>.. Spectral phase manipulation will change the symmetry of <i>E(</i>ω-Ω<i>)A(</i>Ω<i>)</i> for different values ω, and will therefore induce variations of the polarization spectrum.
0074However, when the modulation frequency significantly exceeds 2π/Δω (here, Δω is the pulse spectral bandwidth), the total signal intensity averages out and is proportional to |<i>A(Ω<sub>R</sub>)</i>|<i><sup>2</sup></i>.
0075By the same token, the measured nonresonant intensity averages out to become proportional to <maths id="math0008" num=""><math display="inline"><msup><mfenced open="|" close="|" separators=""><mo>∫</mo><mfrac><mrow><mi>d</mi><mo></mo><mi>Ω</mi></mrow><mi mathvariant="normal">Ω</mi></mfrac><mo></mo><mi>A</mi><mfenced><mi mathvariant="normal">Ω</mi></mfenced></mfenced><mn>2</mn></msup><mn>.</mn></math><img file="EP1588152B1_D0008.tif" /></maths> The total measured signal is the interference of the signals generated by the two different processes. In the common case where the nonresonant background is considerably larger than the resonant signal, the resonant signal is measured by "heterodyne detection" with it, to yield <maths id="math0009" num="(6)"><math display="block"><mrow><mo>|</mo><msup><mrow><msup><mi>P</mi><mfenced><mn>3</mn></mfenced></msup><mfenced><mi>ω</mi></mfenced><mo>|</mo></mrow><mn>2</mn></msup><mo>=</mo><msup><mfenced open="|" close="|" separators=""><msubsup><mi>P</mi><mi>r</mi><mfenced><mn>3</mn></mfenced></msubsup><mfenced><mi>ω</mi></mfenced><mo>+</mo><msubsup><mi>P</mi><mi mathvariant="italic">nr</mi><mfenced><mn>3</mn></mfenced></msubsup><mfenced><mi>ω</mi></mfenced></mfenced><mn>2</mn></msup><mo>≈</mo></mrow><msup><mfenced open="|" close="|" separators=""><msubsup><mi>P</mi><mi mathvariant="italic">r</mi><mfenced><mn>3</mn></mfenced></msubsup><mfenced><mi>ω</mi></mfenced></mfenced><mn>2</mn></msup><mo>+</mo><mn>2</mn><mo></mo><mi mathvariant="italic">Re</mi><mfenced open="[" close="]" separators=""><msubsup><mi>P</mi><mi mathvariant="italic">r</mi><mfenced><mn>3</mn></mfenced></msubsup><mfenced><mi>ω</mi></mfenced><mo></mo><msubsup><mi>P</mi><mi mathvariant="italic">nr</mi><mfenced><mn>3</mn></mfenced></msubsup><mfenced><mi>ω</mi></mfenced><mo>*</mo></mfenced><mn>.</mn></math><img file="EP1588152B1_D0009.tif" /></maths>
0076By exploiting the different spectral response of the resonant and nonresonant components, it is possible to significantly reduce the nonresonant background while maintaining the resonant signal. Following the above derivation, it can be clear to a person versed in the art that properly choosing the periodicity of the phase function, the population and thus the resonant CARS signal is reconstructed to nearly the value achieved by a spectral phase coherent pulse.
0077Thus, it was shown above that the coherent control of the CARS process via manipulation of the vibrational level population amplitude <i>A(Ω)</i> can be accomplished by applying periodic spectral phase function (e.g., sinusoidal function) producing periodical modulation of the spectral phase of the excitation pulse.
0078Referring to <figref idref="f0003"><b>Figs. 4A-4C</b></figref><b>,</b> measurements of the Raman spectrum are exemplified. The Raman spectrum has been obtained by monitoring the total CARS signal, while varying the phase function periodicity. According to this examples, a simple periodic spectral phase function <i>Φ(</i>ω<i>)=1.25cos(C</i>ω<i>)</i> (wherein <i>C</i> is a constant) has been applied to the input spectral phase coherent pulse for its shaping. Presented in <figref idref="f0003">Figs. 4A-4C</figref> are the intensities of the CARS signal versus the number of periods of the sinusoidal phase across the spatial light modulator (SLM). The insets show the Raman spectrum, derived by Fourier transformation of the corresponding measured intensity signals.
0079More specifically, <figref idref="f0003"><b>Fig. 4A</b></figref> illustrates single-pulse CARS spectroscopy of methanol molecules in the liquid phase. As can be seen for methanol, which has no Raman resonance levels at the measured frequency range, only a monotonic decrease of the nonresonant signal is observed as the number of oscillation periods is increased.
0080<figref idref="f0003"><b>Fig. 4B</b></figref> illustrates single-pulse CARS spectroscopy of CH<sub>2</sub>Br<sub>2</sub> molecules in the liquid phase. As can be seen, for CH<sub>2</sub>Br<sub>2</sub>, which has a single resonance at Ω<sub>R</sub>=577cm<sup>-1</sup>, the Raman signal oscillates periodically, whenever the modulation period is an integer fraction of Ω<sub>R</sub>. The Fourier transform operation retrieves the single Raman resonant level with a resolution that is inversely proportional to the number of modulation periods.
0081<figref idref="f0003"><b>Fig. 4C</b></figref> illustrates single-pulse CARS spectroscopy of (CH<sub>2</sub>Cl)<sub>2</sub> molecules in the liquid phase. As can be seen, for the material with two resonant levels, such as (CH<sub>2</sub>Cl)<sub>2</sub>, two resonant peaks (at 652cm<sup>-1</sup> and 750cm<sup>-1</sup>) are observed in the Raman spectrum.
0082The spectral resolution of the Fourier transform operation is better than the pulse bandwidth by a factor of 40 (i.e., about 30cm<sup>-1</sup>). It is limited by the maximal number of phase modulation periods on the spatial light modulator (SLM), technically determined by the number of pixels on the SLM.
0083Thus, spectral resolution can be optimized by employing a simple sinusoidal phase function. Breaking the single pulse into a longer train, than used in the above example, containing a larger number of pulses can further reduce the nonresonant background, which depends directly on the pulse peak intensity. This is achieved by adding higher harmonics orders to the applied phase functions. This phase function can be expressed as a summation of the different harmonics orders as <maths id="math0010" num=""><math display="inline"><mi mathvariant="normal">Φ</mi><mfenced><mi>ω</mi></mfenced><mo>=</mo><mstyle displaystyle="false"><mstyle displaystyle="true"><munder><mo>∑</mo><mi>n</mi></munder></mstyle><msub><mi>A</mi><mi>n</mi></msub><mo></mo><mi mathvariant="italic">cos</mi><mfenced separators=""><msub><mi>C</mi><mi>n</mi></msub><mo></mo><mi>ω</mi></mfenced></mstyle></math><img file="EP1588152B1_D0010.tif" /></maths> where <i>A<sub>n</sub></i> are the different harmonic order coefficients.
0084Referring to <figref idref="f0004"><b>Figs. 5A-5B</b></figref><b>,</b> a demonstration of the nonresonant background suppression by using periodic spectral functions with additional harmonics is illustrated for methanol (nonresonant component only) and CH<sub>3</sub>I (a single resonance at 523cm<sup>-1</sup>), respectively. The CARS signal of relative intensity is shown versus the number of phase oscillation periods across the spatial light modulator for both a sinusoidal phase function Φ<i>(</i>ω<i>)=1.25cos(C</i>ω<i>)</i> (curve <b>51</b>) and a phase function <i>Φ(</i>ω<i>)=1.4cos(C</i>ω<i>)-1.4cos(2C</i>ω<i>)</i> which contains an additional harmonic component (curve <b>52</b>). The CARS signal is plotted relative to that obtained by a spectral phase coherent (transform-limited) pulse (0 phase function oscillations). It should be noted that to achieve adequate suppression of the nonresonant background at least several oscillation periods of the phase function across the pulse spectrum are necessary.
0085<figref idref="f0004"><b>Figs. 5A</b></figref> shows how the use of a phase function containing only one additional harmonic allows for attenuating the nonresonant background by nearly two orders of magnitude.
0086<figref idref="f0004"><b>Figs. 5B</b></figref> shows that the use of a phase function containing two components attenuates significantly the nonresonant background, while the resonant component is almost completely restored. The achieved contrast between the resonant signal and the nonresonant background is thus greatly improved.
0087According to another example of the phase control, the spectral phase of the excitation pulse can be controlled by applying to the excitation pulse a narrow-band phase gate near its short wavelength (high-energy) end. In other words, a narrow-band feature is applied to the pulse for inducing sharp changes in the phase of the factor <i>E(</i>ω-Ω<i>)</i> in Eqs. (1) and (2). Preferably, but not necessarily, the phase of the phase gate spectral function can be shifted by π at ω-Ω. Such spectral phase function hereinafter will be referred to as a π phase gate. For example, a bandwidth of the π phase gate can be in the range of about 0.5nm to 3nm (i.e., 5-30cm<sup>-1</sup>). Preferably, the π phase gate is spectrally located in the vicinity of a short wavelength end of the excitation pulse.
0088In this scheme, a narrow spectral band in the excitation pulse is phase shifted, serving as an effective probe, and the Raman spectrum is extracted from the interference pattern of the resonant signal with the nonresonant background.
0089Referring to <figref idref="f0005"><b>Figs. 6A-6C</b></figref><b>,</b> there is illustrated an effect of a π phase gate on the temporal shape of the pulse and on the population amplitude, according to this specific example of the phase control.
0090<figref idref="f0005"><b>Fig. 6A</b></figref> shows an example of the excitation pulse spectral intensity <b>61,</b> a spectral phase <b>62</b> of the transform limited (unshaped) pulse, and a π phase-gate <b>63</b> of the shaped pulse. In this example, the π phase-gate <b>63</b> has the bandwidth of about 1.5nm centered at 790nm. Also shown is a typical spectral region where the CARS signal can be measured. Thus, in order to avoid the spectral overlap between the input pulse and a CARS signal the power spectrum of the input pulse is blocked at about 780nm. Note that the spectral intensity of the CARS signal is identified by a reference numeral <b>64.</b>
0091<figref idref="f0005"><b>Fig. 6B</b></figref> shows in time domain a temporal intensity (temporal envelope) of a spectral phase coherent pulse <b>65</b> and a temporal intensity of a π phase-gate shaped pulse <b>66.</b> As can be seen, the narrow phase gate hardly effect the form of the pulse, merely reducing the peak intensity by about 15%.
0092<figref idref="f0005"><b>Fig. 6C</b></figref> shows a calculated population amplitude <i>A(</i>Ω<i>)</i> for the spectral phase coherent pulse <b>67</b> and for the pulse having the modulated phase <b>68.</b> As can be seen in <figref idref="f0005">Fig. 6C</figref>, for the case of the spectral phase coherent pulse, the population amplitude decays monotonically versus the vibration energy. The changes due to the phase gate slightly modify the population amplitude <i>A(Ω)</i>. This modification depends on the width of the phase gate. Thus, the population amplitude <i>A(</i>Ω<i>)</i> is hardly modified for a narrow gate, since the energy content in a narrow spectral band part is negligible compared with the entire pulse energy.
0093The resonant signal from a level Ω<i><sub>R</sub></i> at any given frequency ω is centered at ω-Ω<i><sub>R</sub></i>, due to a rather narrow band probe. In contrast, the nonresonant background signal is a coherent sum contributed by a large portion of the pulse bandwidth. Thus, phase changes over a narrow spectral band, while dramatically affecting the phase of the resonant signal, hardly modify the phase of the nonresonant signal. The relative phase between the nonresonant background signal and the resonant signal should therefore vary rapidly, inducing either constructive or destructive interference at the phase gate edges. Measuring the total CARS spectrum, the interference pattern between the resonant signal and the nonresonant background can be interpreted to reveal the vibrational energy level diagram.
0094The effect of the phase control by using an excitation phase with a narrow-band phase gate is demonstrated in the numerical simulation results shown in <figref idref="f0006"><b>Figs. 7A-7D</b></figref><b>.</b>
0095<figref idref="f0006"><b>Fig. 7A</b></figref> shows a calculated CARS electric field as a function of frequency (spectrum) of both the resonant contribution <b>71</b> and the nonresonant contribution <b>72</b> along with the relative phase <b>73</b> between them for a spectral phase coherent pulse illuminating iodomethane (resonant at 523 cm<sup>-1</sup>). <figref idref="f0006"><b>Fig 7B</b></figref> shows the calculated resulting CARS spectrum <b>74</b> for the illuminating of iodomethane with a spectral phase coherent pulse.
0096As can be seen, the nonresonant background spectrum <b>72</b> monotonically decreases towards higher energies (short wavelengths), while the resonant signal <b>71</b> resembles the excitation pulse spectrum, shifted by the Raman level energy. The relative phase <b>73</b> between the two is nearly constant at about π/2, rising to about π below 749nm.
0097<figref idref="f0006"><b>Fig. 7C</b></figref> shows a calculated CARS spectrum of both the resonant contribution <b>75</b> and the nonresonant contribution <b>76</b> along with the relative phase <b>77</b> between them for the illuminating of iodomethane by a π phase gate shaped pulse. <figref idref="f0006"><b>Fig 7D</b></figref> shows the calculated resulting CARS spectrum <b>78</b> for the spectral phase coherent pulse illuminating iodomethane. Three effects can be seen in <figref idref="f0006">Fig. <b>7C</b></figref><b>.</b> First, there is some reduction of the nonresonant background component. Second, the relative phase between the resonant component and the nonresonant background component varies between 0 (constructive interference) at the high-energy (short wavelength) side of the gate, and π (destructive interference) at the low energy (long wavelength) side. Third, two new peaks <b>79</b> appear in the resonant spectrum <b>75,</b> at both ends of the phase gate. The peaks <b>79</b> are due to a transient enhancement effect, demonstrated by Oron et al. previously in conventional multi-beam CARS and described in <nplcit id="ncit0015" npl-type="s"><text>Phys. Rev. Lett., 2002, V. 88, P. 63004</text></nplcit>.
0098As can be seen in <figref idref="f0006"><b>Fig 7D</b></figref><b>,</b> the net result is a sharp peak <b>710,</b> followed by a deep dip <b>720</b> in the total CARS signal <b>78.</b> It should be noted that this peak-dip feature determines the energy of the vibrational level with an accuracy of the phase gate width. For example, the phase gate can be defined by three pixels on the SLM, corresponding, to about 25 cm<sup>-1</sup>, that is about 40 times better than the excitation pulse width.
0099Referring to <figref idref="f0007"><b>Figs. 8A</b> and <b>8B</b></figref><b>,</b> measured normalized CARS spectra are illustrated for the case of a spectral phase coherent pulse (curves <b>81a</b> and <b>81b)</b> and the case of a phase gate shaped pulse (curves <b>82a</b> and <b>82b),</b> respectively, for methanol (having nonresonant component only) and for iodomethane (having a resonant at 523 cm<sup>-1</sup>). The peak-dip feature due to the resonant contribution at 523 cm<sup>-1</sup> can be seen in the iodomethane spectrum (<figref idref="f0007">Fig. 8B</figref>), while the normalized methanol spectrum (<figref idref="f0007">Fig. 8A</figref>) remains nearly unchanged.
0100The Raman level structure can be easily extracted from the measured spectrum by considering, for example, the normalized spectral intensity variation of the CARS signal <maths id="math0011" num="(7)"><math display="block"><mi>f</mi><mfenced><mi mathvariant="normal">Ω</mi></mfenced><mo>=</mo><mo>-</mo><mfrac><mrow><mi>I</mi><mrow><mo>(</mo><msub><mi>ω</mi><mi>g</mi></msub><mo>+</mo><mi mathvariant="normal">Ω</mi><mo>-</mo><mi mathvariant="normal">Δ</mi><mo>/</mo><mn>2</mn><mo>)</mo><mo>-</mo><mi>I</mi><mo></mo><mfenced separators=""><msub><mi>ω</mi><mi>g</mi></msub><mo>+</mo><mi mathvariant="normal">Ω</mi><mo mathvariant="normal">+</mo><mi mathvariant="normal">Δ</mi><mo>/</mo><mn>2</mn><mo>)</mo></mfenced></mrow></mrow><mrow><msubsup><mo>∫</mo><mrow><msub><mi>ω</mi><mi>g</mi></msub><mo>+</mo><mi mathvariant="normal">Ω</mi><mo>-</mo><mi mathvariant="normal">Δ</mi><mo>/</mo><mn>2</mn></mrow><msub><mi>ω</mi><mi>g</mi></msub></msubsup><mo></mo><mi>I</mi><mfenced><mi>ω</mi></mfenced><mo>ⅆ</mo><mi>ω</mi></mrow></mfrac></math><img file="EP1588152B1_D0011.tif" /></maths> where ω<i><sub>g</sub></i> is the central frequency of the phase gate and Δ is the gate width. It should be understood that the normalization is required to compensate for the decrease in the nonresonant background towards higher energies.
0101Referring to <figref idref="f0008"><b>Figs. 9A-9D</b></figref><b>,</b> plots of the normalized spectral intensity <i>f(</i>Ω<i>)</i> derived from the measured CARS spectra (curves <b>91, 92, 93</b> and <b>94</b>) are given in for several materials, along with simulation predictions (curves <b>95, 96, 97</b> and <b>98</b>) obtained by computer simulations.
0102As can be seen in <figref idref="f0008"><b>Fig. 9A</b></figref><b>,</b> a nearly flat line is observed for methanol, having no Raman level in this range. The 459 cm<sup>-1</sup> level of carbon tetrachloride is easily observed in <figref idref="f0008"><b>Fig. 9B</b></figref><b>.</b> For mesitylene (<figref idref="f0008"><b>Fig. 9C</b></figref>), having two Raman levels at 515cm<sup>-1</sup> and 575cm<sup>-1</sup>, two well-separated peaks can be seen. At the high-energy end, the 652cm<sup>-1</sup> level of carbon disulfide is shown in <figref idref="f0008"><b>Fig. 9D</b></figref><b>.</b> It should be noted that the spectral resolution observed in these figures is of the order of about 30cm<sup>-1</sup>, (i.e., almost a factor of 40 better than the excitation pulse bandwidth). The resolution is determined by both the width of the phase gate (25 cm<sup>-1</sup>) and the monochromator resolution (about 8 cm<sup>-1</sup>). The minimal phase gate width is determined by both the pixellization of the SLM and by the spot size of the incident beam on it. In all the examples presented above the phase gate consisted of three pixels on the SLM.
0103It should be understood that for detection or a given Raman level, it is possible to control the relative intensity ratio between the resonant and the nonresonant components by varying the spectral location of the phase gate. This is due to the fact that the nonresonant background decreases towards higher energies. Additionally, a further control is possible by varying the phase gate width. Thus, a wider probe width can improve the resonant to nonresonant intensity ratio (while resulting in lower spectral resolution). In this case, even weak Raman levels can be observed by using this scheme.
0104The benefits of broadband excitation can be fully exploited when attempting to detect materials with several vibrational bands in the measured energy range. In this case, a spectral phase mask having multiple phase gates at appropriate locations can be used to generate a large coherent spectral feature in the CARS spectrum, due to the constructive interference of the resonant contributions from the various levels.
0105According to the invention, the CARS process is controlled by controlling the polarization of the excitation pulse. It should be appreciated that the polarization control can be carried out in addition to the shaping, i.e., correcting of the dispersion of the input pulse and assigning of the desired phase to each frequency component of the driving pulse.
0106In particular, the polarization control can be used to break the ultrashort input pulse into a broadband pump and a narrow-band probe with orthogonal polarization.
0107The nonlinear polarization producing the CARS signal driven by an electric field whose spectrum is <i>E(</i>ω<i>)</i> can be approximated for <i>nonresonant</i> transitions: <maths id="math0012" num="(8)"><math display="block"><msubsup><mi>P</mi><mrow><mi>n</mi><mo></mo><mi>r</mi><mfenced><mi>j</mi></mfenced></mrow><mfenced><mn>3</mn></mfenced></msubsup><mo>∝</mo><msubsup><mi>χ</mi><mi>jklm</mi><mi>nr</mi></msubsup><munderover><mo>∫</mo><mn>0</mn><mi>∞</mi></munderover><mi>dΩ</mi><mo></mo><msub><mi>E</mi><mi>k</mi></msub><mo></mo><mfenced separators=""><mi>ω</mi><mo>-</mo><mi mathvariant="normal">Ω</mi></mfenced><mo></mo><msub><mi>A</mi><mi>m</mi></msub><mrow><mo>(</mo><mi mathvariant="normal">Ω</mi><mo>)</mo><mo>,</mo></mrow></math><img file="EP1588152B1_D0012.tif" /></maths> where <maths id="math0013" num=""><math display="inline"><msub><mi>A</mi><mi mathvariant="italic">bn</mi></msub><mfenced><mi mathvariant="normal">Ω</mi></mfenced><mo>=</mo><msubsup><mo>∫</mo><mn>0</mn><mi>∞</mi></msubsup><mo></mo><mi>d</mi><mo></mo><mi>ωʹ</mi><mo></mo><msub><mi>E</mi><mn>1</mn></msub><mo>*</mo><mrow><mo>(</mo><mi>ωʹ</mi><mo>-</mo><mi mathvariant="normal">Ω</mi><mo>)</mo><msub><mi>E</mi><mi>m</mi></msub><mfenced><mi>ωʹ</mi></mfenced></mrow></math><img file="EP1588152B1_D0013.tif" /></maths> is the population amplitude and <maths id="math0014" num=""><math display="inline"><msubsup><mi>χ</mi><mi mathvariant="italic">jklm</mi><mrow><mi>n</mi><mo></mo><mover><mi>r</mi><mo>˙</mo></mover></mrow></msubsup></math><img file="EP1588152B1_D0014.tif" /></maths> is the third order susceptibility tensor.
0108In turn, for a <i>singly resonant</i> Raman transition through an intermediate level |i> at an energy of ℏΩ<i><sub>R</sub></i> and a bandwidth Γ, one can obtain: <maths id="math0015" num="(9)"><math display="block"><msubsup><mi>P</mi><mrow><mi>r</mi><mfenced><mi>j</mi></mfenced></mrow><mfenced><mn>3</mn></mfenced></msubsup><mo>∝</mo><msubsup><mi>χ</mi><mi mathvariant="italic">jklm</mi><mrow><mi>n</mi><mo></mo><mover><mi>r</mi><mo>˙</mo></mover></mrow></msubsup><munderover><mo>∫</mo><mn>0</mn><mi>∞</mi></munderover><mi>dΩ</mi><mo></mo><mfrac><mrow><msub><mi>E</mi><mi>k</mi></msub><mo></mo><mfenced separators=""><mi>ω</mi><mo>-</mo><mi mathvariant="normal">Ω</mi></mfenced></mrow><mrow><mfenced separators=""><msub><mi mathvariant="italic">Ω</mi><mi mathvariant="italic">R</mi></msub><mo mathvariant="italic">-</mo><mi mathvariant="italic">Ω</mi></mfenced><mo>+</mo><mi>i</mi><mo></mo><mi>Γ</mi></mrow></mfrac><mo></mo><msub><mi>A</mi><mi>m</mi></msub><mrow><mo>(</mo><mi mathvariant="normal">Ω</mi><mo>)</mo><mn>.</mn></mrow></math><img file="EP1588152B1_D0015.tif" /></maths>
0109The two main differences between the resonant and nonresonant components are as follows. First, the resonant component has a narrow spectral response, centered at Ω=Ω<i><sub>R</sub></i>, whereas the spectral response of the nonresonant component is broad. Second, the response of the resonant component inverts sign at about Ω=Ω<i><sub>R</sub></i>, while the nonresonant response has a constant phase. It will be shown hereinbelow how these differences are used to reduce the nonresonant component while enhancing the resonant component.
0110One approach to single-pulse polarization controlled CARS would be to rotate by π/2 the polarization of the excitation pulse in a narrow band at its high energy end, from an <i>x</i>-plane to a <i>y</i>-plane, and to monitor the CARS signal in the <i>y</i>-plane. As a result, the monitored signal will effectively dependent only on <i>A<sub>xx</sub></i> (as the polarization field), and on <i>E<sub>y</sub></i> (as the probe). This is true for both the resonant and nonresonant terms.
0111As was mentioned above for the case of the coherent control by means of a phase gate, the ratio of the resonant signal to the nonresonant signal of the background as well as the spectral resolution can be improved when the probe pulse becomes longer. According to this embodiment of the invention, the duration of the probe pulse is determined by the spectral width of the polarization shifted band.
0112Referring to <figref idref="f0009"><b>Figs. 10A-10D</b></figref><b>,</b> examples of the CARS spectra from iodomethane obtained with polarization-only shaping are plotted for various polarized probe spectral bandwidths. The total bandwidth of the polarized probe decreases as follows: 4.5nm (for the example shown in <figref idref="f0009"><b>Fig. 10A</b></figref>); 2.3nm (for the example shown in <figref idref="f0009"><b>Fig. 10B</b></figref>); 1.2nm (for the example shown in <figref idref="f0009"><b>Fig. 10C</b></figref>) and 0.6nm (for the example shown in <figref idref="f0009"><b>Fig. 10D</b></figref>). As the probe bandwidth is decreased from 4.5nm (corresponding to 400fs) to 0.6nm (corresponding to 3ps), the resonant component, due to its narrow spectral response, becomes narrower but maintains its strength. In contrast, the nonresonant background component, having a broad spectral response, becomes weaker but maintains its spectral shape. Since the two are coherent, they generate an interference pattern, interfering constructively at the low-energy end of the probe pulse, and destructively at its high-energy end. This interference pattern obscures the interpretation and calls for further reduction of the nonresonant background.
0113Further reduction of the nonresonant background is achieved by using both the polarization control and the phase control. It will be shown below that the combination of both the phase and the polarization controls can lead to nearly complete suppression of the nonresonant component, yielding background-free single-pulse multiplex CARS spectra with a high spectral resolution.
0114<figref idref="f0010"><b>Fig. 11</b></figref> exemplifies the spectral intensity of a phase and polarization shaped excitation pulse. According to this example, a π phase-shifted gate <b>110</b> is introduced at a <i>y</i> polarization shifted band <b>111,</b> serving as a probe. The probe is thus split into two spectrally distinct longer probe pulses with opposite phase. Due to the broad nonresonant spectral response, the nonresonant background from these two probe pulses interferes destructively. Since the <i>A<sub>xx</sub>(</i>Ω<i>)</i> component of the amplitude is a very smooth function, these two probe pulses are almost equal in magnitude. As a result, the nonresonant background component of the CARS signal can be reduced by orders of magnitude.
0115This reduction can be alternatively viewed in time domain. <figref idref="f0010"><b>Fig. 12</b></figref> shows a schematic drawing of the electric field envelope versus time in both the x polarization (curve <b>121</b>) and the y polarization (curve <b>122</b>) for both phase and polarization shaped pulse. For convenience, the x polarization field has been reduced by about two orders of magnitude. As can be appreciated, the π phase gate modifies the temporal shape of the <i>y</i> polarized probe so that the electric field envelope crosses zero at the peak of the x polarized driving field.
0116Due to the instantaneous nonresonant response, the nonresonant background is almost completely suppressed. The resonant signal response is different. It should be noted that the π phase gate compensates for the sign inversion of the denominator in Eq. 9, leading to an increased resonant signal over a narrow spectral band shifted by the Raman level energy from the π phase gate location.
0117Referring to <figref idref="f0010"><b>Figs. 13A-13C</b></figref><b>,</b> examples of the CARS spectra from iodomethane obtained with both polarization and π phase gate shaping are plotted for various probe spectral bandwidths. According to these examples, the total probe bandwidth varies from 4.5nm (for the example shown in <figref idref="f0010"><b>Fig. 13A</b></figref>) to 2.4nm (for the example shown in <figref idref="f0010"><b>Fig. 13B</b></figref>), and then further to 1.2nm (for the example shown in <figref idref="f0010"><b>Fig. 13C</b></figref>). When the measured spectra obtained by using the polarization and phase shaped probe pulses (shown in <figref idref="f0010"><b>Figs. 13A - 13C</b></figref><b>)</b> are compared to the measured spectra obtained by using polarization-only shaped spectral phase coherent pulses (shown in <figref idref="f0009">Figs. 10A-10D</figref>), a dramatic decrease in the nonresonant background can be seen. It should be noted that the small nonresonant background that is still observed using the phase- shaped probe is in fact a small fraction (about 0.05%) of the χ<i><sub>xxxx</sub></i> component which "leaks" through the polarizer due to small birefringence of the microscope objective and collection optics. However, since this background component is independent on the applied phase and polarization, it can be easily subtracted.
0118Referring to <figref idref="f0011"><b>Figs. 14A-14C</b></figref><b>,</b> examples of Raman spectra of several simple molecules obtained with phase and polarization shaped pulses are illustrated. The total probe bandwidth has been about 1.2nm, including a π phase gate at the bandwidth's center. The "raw" measured CARS spectra are shown in the left part of the figures. It should be noted that the small nonresonant background that is still observed is in fact a small fraction (about 0.05%) of the χ<i><sub>xxxx</sub></i> component which "leaks" through the polarizer due to small birefringence of the microscope objective and collection optics. Since this background component is independent on the applied phase and polarization, it can be easily subtracted. The extracted Raman spectra, from which the background due to birefringence was subtracted, are plotted on the right part of the figures.
0119<figref idref="f0011"><b>Fig. 14A</b></figref> shows a peak <b>141</b> corresponding to the 523cm<sup>-1</sup> Raman level of iodomethane. The full-width at half maximum of this peak is about 15cm<sup>-1</sup>.
0120The measured Raman spectrum of 1,2-dichloroethane is shown in <figref idref="f0011"><b>Fig. 14B</b></figref><b>.</b> The levels at 652cm<sup>-1</sup> and 750 cm<sup>-1</sup>, separated by 98cm<sup>-1</sup>, are seen as two very well separated peaks <b>142</b> and <b>143.</b> This spectrum also has a peak <b>144</b> corresponding to the level at 298cm<sup>-1</sup> located at the lower limit of the detectable region.
0121The Raman spectrum of p-xylene, having a peak <b>145</b> corresponding to the level at 830cm<sup>-1</sup>, is shown in <figref idref="f0011"><b>Fig. 14C</b></figref><b>.</b> This example demonstrates the ability of the technique of the present invention to observe the high-energy end of the detectable region. It should be noted that the measured energy range can be extended to higher frequencies (1000-15000cm<sup>-1</sup>) by using shorter pulses.
0122Single-pulse CARS is particularly suitable for nonlinear microscopy. <figref idref="f0012"><b>Fig. 15</b></figref> exemplifies a single-pulse CARS microscope <b>150</b> according to the invention. Generally, the CARS microscope <b>150</b> includes all the elements of the single-pulse spectrometer (<b>20</b> in <figref idref="f0001">Fig. 2A</figref> or <b>200</b> in <figref idref="f0001">Fig. 2B</figref>) needed for inducing a CARS process in the molecules of a target material and for detecting the CARS signal scattered by the material. More specifically, the CARS microscope <b>150</b> includes means for inducing the CARS process by producing a beam constituted of unitary optical excitation pulses and directing it through the target material placed on a sample holder <b>29.</b> According to the technique of the present invention, each pulse is a unitary pulse that carries a pump photon, a Stokes photon and a probe photon. The CARS microscope thus includes a laser <b>21</b> adapted for generating at least one spectral phase coherent (transform limited) optical pulse and a programmable pulse shaper <b>22</b> (constituting a control means for coherently controlling the CARS process) operable for shaping the transform limited optical excitation pulse obtained from the laser <b>21,</b> a detector unit 26, and a light directing optics. The shaping is carried out by correcting the pulse dispersion as well as assigning the desired phase (and, optionally, polarization) to the pulse, as described above.
0123The light directing optics of the CARS microscope <b>150</b> includes a focusing assembly (e.g., a microscope objective) <b>24a</b> arranged for creating a focal spot <b>152</b> formed by the beam on the target material; a lens assembly <b>24b</b> arranged for collecting the output CARS signal from the target material; and a filtering assembly <b>25</b> operable for filtering the collected output CARS signal propagating towards the detector unit <b>26.</b> All these components are similar to those described above in connection with the CARS spectrometer system (<b>20</b> in <figref idref="f0001">Fig. 2A</figref> or <b>200</b> in <figref idref="f0001">Fig. 2B</figref>).
0124The CARS microscope <b>150</b> utilizes scanning of at least a portion of the target material with the focal spot <b>152,</b> which can be implemented by supporting the sample holder on a stage <b>151</b> driven for movement, and/or by mounting at least some of optical elements for movement with respect to the sample holder to thereby appropriately deflect the incident beam. The microscope objective <b>24a</b> may for example be that commercially available from ZEISS. The stage driver may include a piezoelectric transducer, e.g., P-282 XYZ Nano positioners commercially available from Physik Instrumente (PI) GmbH.
0125An example of <i>single-pulse</i> spectrally resolved microscopy is demonstrated herein below. A selected target material was a glass capillary plate with 10-µm holes filled with CH<sub>2</sub>Br<sub>2</sub> (having a resonant at 577cm<sup>-1</sup>). The sample was raster-scanned around the focused laser beam using computer-controlled piezoelectric drivers.
0126An image shown in <figref idref="f0013"><b>Fig. 16A</b></figref> was taken with a pulse shape maximizing the relative intensity of the resonant contribution, whereas the image shown in <figref idref="f0013"><b>Fig. 16B</b></figref> was taken with a pulse shape minimizing this intensity.
0127The predominantly resonant signal from the filled holes shown in <figref idref="f0013"><b>Fig. 16A</b></figref> is larger by a factor of 4 than that in <figref idref="f0013"><b>Fig. 16B</b></figref><b>,</b> while the signals obtained from the glass is almost similar.
0128<figref idref="f0013"><b>Fig. 16C</b></figref> shows an image that is a difference between the images in <figref idref="f0013"><b>Fig. 16A</b> and <b>Fig. 16B</b></figref><b>,</b> depicting the signal from the 577cm<sup>-1</sup> vibrational level of CH<sub>2</sub>Br<sub>2</sub>. This image appears inverted relative to that obtained by using a spectral phase coherent pulse (shown in <figref idref="f0013"><b>Fig. 16D</b></figref>), where the glass, having a larger nonresonant signal, appears brighter: The image in <figref idref="f0013"><b>Fig. 16C</b></figref> demonstrates the ability of the microscope to spectrally resolve the Raman resonant contribution of a single vibrational level. In a practical system, the difference image can be directly measured by lock-in detection, alternating the phase masks of the images shown in <figref idref="f0013"><b>Figs. 16A</b> and <b>16B</b></figref> at a high frequency.
0129It should be appreciated that for materials having more than one vibrational level it is possible to improve the detection selectivity by tailoring shaped pulses to induce constructive quantum interference of these levels.
0130As such, those skilled in the art to which the present invention pertains, can appreciate that while the present invention has been described in terms of preferred embodiments, the concept upon which this disclosure is based may readily be utilized as a basis for the designing of other structures, systems and processes for carrying out the several purposes of the present invention.
0131Although the example of utilization of the CARS spectrometer technique of the present invention were shown for CARS microscopy, the spectral measurement utilizing the coherent control of the present invention can be easily combined with other nonlinear microscopic methods such as multiphoton fluorescence and third-harmonic generation using the same microscope system.
0132Also, it is to be understood that the phraseology and terminology employed herein are for the purpose of description and should not be regarded as limiting.
0133It is important, therefore, that the scope of the invention is not construed as being limited by the illustrative embodiments set forth herein. Other variations are possible within the scope of the present invention as defined in the appended claims and their equivalents.
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| Document | Relation | Office | Cited during |
|---|---|---|---|
| US9128059B2 | Cited by | United States of America | Applicant |
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| CHENG J-X ET AL: "POLARIZATION COHERENT ANTI-STOKES RAMAN SCATTERING MICROSCOPY" OPTICS LETTERS, OPTICAL SOCIETY OF AMERICA, WASHINGTON, US, vol. 26, no. 17, 1 September 2001 (2001-09-01), pages 1341-1343, XP001124324 ISSN: 0146-9592 | Non-patent | – | – |
| MESHULACH, D ET AL: "COHERENT CONTROL OF TWO-PHOTON TRANSITIONS BY A FEMTOSECOND LASER PULSE" NATURE, vol. 396, 1998, pages 239-242, XP002285598 | Non-patent | – | – |
| MESHULACH, D ET AL: "COHERENT QUANTUM CONTROL OF MULTIPHOTON TRANSITIONS BY SHAPED ULTRASHORT OPTICAL PULSES" PHYSICAL REVIEW A, vol. 60, no. 2, 1999, pages 1287-1292, XP002285599 | Non-patent | – | – |
15 members in 7 offices
Priority claims9
| Document | Office | Kind | Date |
|---|---|---|---|
| 353063 | United States of America | – | |
| 35306303 | United States of America | A | |
| 35306303 | United States of America | A | |
| 2004000083 | Israel | W | |
| 2004000083 | Israel | W | |
| 353063 | – | – | – |
| IL2004000083 | – | – | – |
| US20030353063 | – | – | – |
| WO2004IL00083 | – | – | – |
Members15
| Document | Office | Kind | |
|---|---|---|---|
| US2004145735A1 | United States of America | A1 | |
| WO2004068126A1 | World Intellectual Property Organization (WIPO) | A1 | |
| EP1588152A1 | European Patent Office (EPO) | A1 | |
| JP2006516730A | Japan | A | |
| IL169683D0 | Israel | D0 | |
| US7256885B2 | United States of America | B2 | |
| US2007258088A1 | United States of America | A1 | |
| US2007291264A1 | United States of America | A1 | |
| EP1588152B1This record | European Patent Office (EPO) | B1 | |
| AT395587T | Austria | T | |
| ATE395587T1 | Austria | T1 | |
| DE602004013721D1 | Germany | D1 | |
| US7403282B2 | United States of America | B2 | |
| JP4499091B2 | Japan | B2 | |
| IL169683A | Israel | A |
58 legal events, as 6 offices reported them to INPADOC
Over the term
Point at a mark for the eventEvents
| Event | Code | Office | |
|---|---|---|---|
| Lapsed in a contracting state [announced via postgrant information from national office to epo]LapsedPG25 | PG25 | EP | |
| Lapsed in a contracting state [announced via postgrant information from national office to epo]LapsedPG25 | PG25 | EP | |
| Lapsed in a contracting state [announced via postgrant information from national office to epo]LapsedPG25 | PG25 | EP | |
| Notification of lapseLapsedST | ST | FR | |
| Gb: european patent ceased through non-payment of renewal feeCeasedGBPC | GBPC | EP | |
| Application deemed withdrawn, or ip right lapsed, due to non-payment of renewal feeWithdrawnR119 | R119 | DE | |
| Annual fee paid to national office [announced via postgrant information from national office to epo]GrantedPGFP | PGFP | EP | |
| Annual fee paid to national office [announced via postgrant information from national office to epo]GrantedPGFP | PGFP | EP | |
| Annual fee paid to national office [announced via postgrant information from national office to epo]GrantedPGFP | PGFP | EP | |
| Fee paymentPLFP | PLFP | FR | |
| Lapsed in a contracting state [announced via postgrant information from national office to epo]LapsedPG25 | PG25 | EP | |
| Lapsed in a contracting state [announced via postgrant information from national office to epo]LapsedPG25 | PG25 | EP | |
| Lapsed in a contracting state [announced via postgrant information from national office to epo]LapsedPG25 | PG25 | EP | |
| Lapsed in a contracting state [announced via postgrant information from national office to epo]LapsedPG25 | PG25 | EP | |
| Lapsed in a contracting state [announced via postgrant information from national office to epo]LapsedPG25 | PG25 | EP | |
| Lapsed in a contracting state [announced via postgrant information from national office to epo]LapsedPG25 | PG25 | EP | |
| Lapsed in a contracting state [announced via postgrant information from national office to epo]LapsedPG25 | PG25 | EP | |
| Lapsed in a contracting state [announced via postgrant information from national office to epo]LapsedPG25 | PG25 | EP | |
| Patent lapsedLapsedMM4A | MM4A | IE | |
| Lapsed in a contracting state [announced via postgrant information from national office to epo]LapsedPG25 | PG25 | EP | |
| Lapsed in a contracting state [announced via postgrant information from national office to epo]LapsedPG25 | PG25 | EP | |
| Patent ceasedCeasedPL | PL | CH | |
| Lapsed in a contracting state [announced via postgrant information from national office to epo]LapsedPG25 | PG25 | EP | |
| Lapsed in a contracting state [announced via postgrant information from national office to epo]LapsedPG25 | PG25 | EP | |
| No opposition filedOpposition26N | 26N | EP | |
| No opposition filed within time limitOppositionORIGINAL CODE: 0009261PLBE | PLBE | EP | |
| Information on the status of an ep patent application or granted ep patentGrantedSTATUS: NO OPPOSITION FILED WITHIN TIME LIMITSTAA | STAA | EP | |
| Lapsed in a contracting state [announced via postgrant information from national office to epo]LapsedPG25 | PG25 | EP | |
| Lapsed in a contracting state [announced via postgrant information from national office to epo]LapsedPG25 | PG25 | EP | |
| Lapsed in a contracting state [announced via postgrant information from national office to epo]LapsedPG25 | PG25 | EP | |
| Lapsed in a contracting state [announced via postgrant information from national office to epo]LapsedPG25 | PG25 | EP | |
| Lapsed in a contracting state [announced via postgrant information from national office to epo]LapsedPG25 | PG25 | EP | |
| Lapsed in a contracting state [announced via postgrant information from national office to epo]LapsedPG25 | PG25 | EP | |
| Lapsed in a contracting state [announced via postgrant information from national office to epo]LapsedPG25 | PG25 | EP | |
| Lapsed in a contracting state [announced via postgrant information from national office to epo]LapsedPG25 | PG25 | EP | |
| Lapsed in a contracting state [announced via postgrant information from national office to epo]LapsedPG25 | PG25 | EP | |
| Nl: lapsed or annulled due to failure to fulfill the requirements of art. 29p and 29m of the patents actLapsedNLV1 | NLV1 | EP | |
| Lapsed in a contracting state [announced via postgrant information from national office to epo]LapsedPG25 | PG25 | EP | |
| Lapsed in a contracting state [announced via postgrant information from national office to epo]LapsedPG25 | PG25 | EP | |
| Lapsed in a contracting state [announced via postgrant information from national office to epo]LapsedPG25 | PG25 | EP | |
| Corresponds to:REF | REF | EP | |
| European patents granted designating irelandGrantedLANGUAGE OF EP DOCUMENT: FRENCHFG4D | FG4D | IE | |
| European patent takes effect as a national patent in ch/liEP | EP | CH | |
| Designated contracting statesAK | AK | EP | |
| European patent grantedGrantedFG4D | FG4D | GB | |
| (expected) grantORIGINAL CODE: 0009210GRAA | GRAA | EP | |
| Grant fee paidORIGINAL CODE: EPIDOSNIGR3GRAS | GRAS | EP | |
| Despatch of communication of intention to grant a patentORIGINAL CODE: EPIDOSNIGR1GRAP | GRAP | EP | |
| Party data changed (applicant data changed or rights of an application transferred)RAP1 | RAP1 | EP | |
| Party data changed (applicant data changed or rights of an application transferred)RAP1 | RAP1 | EP | |
| Information on inventor provided before grant (corrected)RIN1 | RIN1 | EP | |
| Information on inventor provided before grant (corrected)RIN1 | RIN1 | EP | |
| Information on inventor provided before grant (corrected)RIN1 | RIN1 | EP | |
| Request for extension of the european patent (deleted)DAX | DAX | EP | |
| Request for examination filed17P | 17P | EP | |
| Designated contracting statesAK | AK | EP | |
| Request for extension of the european patentAX | AX | EP | |
| Public reference made under article 153(3) epc to a published international application that has entered the european phaseORIGINAL CODE: 0009012PUAI | PUAI | EP |
Numbers
- Publication
- 1588152
- Publication, DOCDB
- 1588152
- Publication, EPODOC
- EP1588152
- Application
- 4706267
- Application, DOCDB
- 04706267
- Application, EPODOC
- EP20040706267
Titles3
- German
- KOHÄRENTE EINIMPULS-ANTI-STOKES-RAMAN-STREUMIKROSKOPIE UND -SPEKTROSKOPIE
- English
- SINGLE-PULS COHERENT ANTI-STOKES RAMAN SCATTERING MICROSCOPY AND SPECTROSCOPY
- French
- SPECTROSCOPIE ET MICROSCOPIE A DIFFUSION RAMAN STIMULEES COHERENTES A IMPULSION UNIQUE
Classification
- CPC, 3
- G01N21/65
- G01N2021/653
- G01N2021/656
- IPC, 1
- G01N21 65
Designated states1
- Contracting states, 1
- Türkiye