EP1527363A2

Microstructuring optical wave guide devices with femtosecond optical pulses

Abstract

This record has no abstract on file.

Term

Term ended

Projected expiry passed 31 July 2023, 3.2 years ago.

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58 claims: 8 independent, 50 dependent

  1. 1
    Claims of equivalent WO 2004013668 A2 CLAIMS:1 A method for creating a zone of permanently altered refractive index characteristics in an optical waveguiding device made of glass material and having at least one core and at least one cladding, using a beam which is generated by a focused pulsed laser light source having: (i) a wavelength greater than the absorption edge of the glass material;(ii) a pulse width of less than 1 picosecond, and a pulse energy of between 1 nanojoule and 1 millijoule;and (iii) capable of achieving a peak pulse intensity within a defined focal region;comprising the steps of: (a) aligning said laser beam focal region with a defined target region within the waveguiding device;and (b) operating said laser light source with the peak pulse intensity thereof and a repetition rate thereof selected to accumulate heat and to soften the glass material at the target regions and to thereby induce permanent refractive index changes in the waveguiding device at the target region.
  2. 13
    A method for creating a zone of permanently altered refractive index characteristics in an optical waveguiding device made of glass material and having at least one core and at least one cladding, using beams generated by at least two focused pulsed laser light sources, each having:(i) a wavelength greater than the absorption edge of the glass material;(ii) a pulse width of less than 1 picosecond, and a pulse energy of between 1 nanojoule and 1 millijoule;and (iii) capable of achieving a peak pulse intensity within a defined focal region;comprising the steps of: (a) aligning the focal region of each said laser beam with a defined target region within the waveguiding device;and (b) operating said laser light sources with the combined peak pulse intensity thereof and a repetition rate thereof selected to accumulate heat and to soften the glass material at the target regions and to thereby induce permanent refractive index changes in the waveguiding device at the target region.
  3. 25
    A method for creating a zone of permanently altered refractive index characteristics in an optical waveguiding device made of glass material and having at least one core and at least one cladding, using beams generated by at least two focused pulsed laser light sources, each having:(i) a wavelength greater than the absorption edge of the glass material;(ii) a pulse width of less than 1 picosecond, and a pulse energy of between 1 nanojoule and 1 millijoule;and (iii) capable of achieving a peak pulse intensity;comprising the steps of: (a) combining said laser beams to create a single laser beam having a focal region;(b) aligning said single laser beam with a defined target region within the waveguiding device;and (c) operating said laser light sources with the combined peak pulse intensity thereof and a repetition rate thereof selected to accumulate heat and to soften the glass material at the target regions and to thereby induce permanent refractive index changes in the waveguiding device at the target region.
  4. 37
    An optical waveguiding device having a core, a cladding, and at least a single zone therein at which the refractive index characteristics of the waveguiding device have been permanently altered, whereby the altered waveguiding device can serve as an attenuator, an optical tap, a polarimeter, or a Bragg grating.
  5. 43
    An optical attenuator comprising an elongated waveguiding device having a core, a cladding, and an optical transmission axis extending along the waveguiding device, said waveguiding device also comprising a single zone therein wherein the index of refraction of the device has been permanently altered such that a controlled portion of light transmitted along said core is removed therefrom, thereby leaving a controlled remainder of the light propagating in the core.
  6. 46
    An optical tap comprising an elongated waveguiding device having a core, a cladding, and an optical transmission axis extending along the waveguiding device, said waveguiding device also comprising a single zone therein wherein the index of refraction of the device has been permanently altered such that a portion of light transmitted along said core is removed therefrom.
  7. 50
    An optical polarimeter comprising an elongated waveguiding device having a core, a cladding, and an optical transmission axis extending along the waveguiding device, said waveguiding device also comprising at least two longitudinally spaced apart zones therein wherein the index of refraction of the device has been permanently altered, said zones having azimuthal angles spaced at substantially 90 degrees, and each of said zones being oriented substantially at a Brewster angle relative to said transmission axis, causing it to reflect s-polarized light out of said core, such that said polarimeter is capable of measuring two orthogonal light polarization states therein.
  8. 55
    A waveguide collimator comprising a waveguide whose refractive index characteristics have been altered near an end face thereof to substantially enlarge the mode field diameter thereof, thereby reducing the divergence of the light exiting the waveguide.