EP0409271A2

Method and apparatus for determining a material's characteristics by photoreflectance using improved computer control.

Abstract

A method and apparatus for determining the charac­teristics of materials, particularly of semiconductors, semi­conductor heterostructures and semiconductor interfaces by the use of photoreflectance, in which monochromatic light and modulated light beam reflected from the sample (62) is detec­ted to produce a d.c. signal and an a.c. signal, whereby the d.c. signal is applied to one input of a computer (70) and the a.c. signal is used with another input of the computer (70) which controls the light intensity of the monochromatic light impinging on the sample (62) to maintain the d.c. signal sub­stantially constant. A stepping motor (53) is preferably utilized for varying the light intensity of the monochromatic light which is controlled by a computer (70) to re-establish rapidly a predetermined d.c. signal established during normal­ization procedures when the light intensity of the monochrom­atic light changes, especially during change of its wave­length. Additionally, the modulation frequency of the modul­ated beam and/or the wavelength of the monochromatic light can also be varied by the computer (70).

EP0409271A2, drawing sheet 1
Sheet 1 of 3

Term

Term ended

Projected expiry passed 20 July 2010, 16.2 years ago.

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12 claims: 8 independent, 4 dependent

  1. 1
    An apparatus for determining characteristics of materials by photoreflectance, comprising monochromatic light source means (50, 51), means (76) for directing the monochromatic light onto a sample (62) to be examined, pump beam means (63) for directing a beam of energy onto the sample (62) including modulation means (54) for modulating said beam, means (77) for directing at least a part of the non-absorbed monochromatic light and of the non-absorbed modulated beam from the sample (62) onto a detector means (56) operable to produce a d.c. signal and an a.c. signal in its outputs, computer means (70), means for applying the d.c. signal from the detec­tor means (56) to an input of the computer means (70), a lock-in amplifier means (55) receiving at its in­put the a.c. signal from the detector means (56) and operat­ively connected with its output to another input of the com­puter means (70), and servo control means for keeping substantially con­stant the operating conditions in a given experiment by main­taining the d.c. signal substantially constant at a predeter­mined value including variable means (58) for varying the light intensity of the monochromatic light impinging on the sample (62) and actuating means (53) for controlling the variable means (58) by an output from the computer means (70) which is operable to cause the actuating means (53) and there­with the variable means (58) to move at predetermined speeds to achieve said predetermined value.
  2. 4
    An apparatus according to any one of claims 1-3, characterized in that with a change in light intensity of the monochromatic light, the computer means (70) is operable to cause the stepping motor (53) of the actuating means to move in increments of a certain number of steps before a com­parison is made again between the then produced d.c. signal with the predetermined value thereof and thereafter repeats such multi-step operation until said predetermined value is overshot by a multi-step movement of the stepping motor (53) whereupon fine-tuning is achieved by reversing actuation of the stepping motor (53) and movement thereof in increments of one step until the predetermined value is at least approx­imately reached.
  3. 5
    An apparatus according to any one of claims 1-4, characterized in that the computer means (70) includes means for disabling the servo control means during the taking of data in the apparatus.
  4. 6
    A method for determining characteristics of a material, especially of semiconductors, semiconductor heterostructures and semiconductor interfaces by photoreflectance, comprising the steps of a) directing a probe beam of monochromatic light onto a material sample whose characteristics are to be determined, b) electromodulating the sample by directing onto the same a modulated pump beam from a pump source, c) collecting the light reflected from or transmitted by the sample in a detector which produces a d.c. signal and an a.c. signal which contains (i) a spurious signal caused by diffuse reflected light from the pump source and/or photoluminescence produced by the pump light reaching the detector and (ii) the true signal, and d) normalizing the procedure by subtracting the spurious signal from the true signal.
  5. 9
    A method according to any one of claims 6, 7 or 8, characterized in that the data is transformed to improve the signal-to-noise ratio by Fast Fourier Transform, filtering and smoothing procedures, in that derivatives and integrals are produced from the data to facilitate signal analysis, and in that lineshape fitting to the data is performed to extract parameters such as photon energy of spectral features, linewidth of spectral features and/or amplitude and phase.
  6. 10
    A method for monitoring in-situ the manufacture of materials such as semiconductors, semiconductor heterostructures and semiconductor interfaces made by thin film techniques, which permits in-situ monitoring of the material substantially continuously during at least part of its manufacture, especially under growth condition, comprising the steps of a) directing a monochromatic beam of probe light onto the material within its growth environment, b) directing a modulated pump beam onto the material, c) analyzing signals reflected from the material to determine its characteristics for use in controlling quality, yield and/or composition of the material being manufactured.
  7. 11
    A method for determining growth condition of semiconductor materials which can be carried out also in-situ and at elevated temperatures, such as temperatures corresponding to the MBE and MOCVD growth temperatures of semiconductor materials, comprising the steps of a) directing a probe beam of monochromatic light onto a material sample whose characteristics are to be determined, b) electromodulating the sample by directing onto the same a modulated pump beam from a pump source, c) collecting the light reflected from or transmitted by the sample in a detector which produces a d.c. signal and an a.c. signal which contains (i) a spurious signal caused by diffuse reflected light from the pump source and/or photoluminescence produced by the pump light reaching the detector and (ii) the true signal, d) normalizing the procedure by subtracting the spurious signal from the true signal under computer control, and e) analyzing the energy band gaps by measuring the position of a respective energy gap so that information of various parameters such as temperature, alloy composition and stress can be obtained.
  8. 12
    A method for obtaining information about trap times, especially at interfaces of semiconductors and semiconductor heterostructures, comprising the steps of a) directing a probe beam of monochromatic light onto a material sample whose characteristics are to be determined, b) electromodulating the sample by directing onto the same a modulated pump beam from a pump source, c) collecting the light reflected from or transmitted by the sample in a detector which produces a d.c. signal and an a.c. signal, and d) determining, especially by computer control, the dependence of the in-phase photoreflectance signal on the pump modulating frequency to obtain information about trap times including information about multiple trap states.