IL104469A

Apparatus and method for micropatterning surfaces

Abstract

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Term

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24 claims: 2 independent, 22 dependent

  1. 1
    WHAT IS CLAIMED IS:1. An apparatus for micropatteming a surface, said surface having a property that is sensitive to irradiation, said apparatus comprising: means for generating a reflective pattern;means for irradiating said irradiation sensitive surface with a radiated image of said reflective pattern;and means for determining the position of said irradiation sensitive surface on which said radiated reflective pattern image is incident, such that said radiated reflective pattern image is properly aligned with said irradiation sensitive surface, and such that when the position of said irradiation sensitive surface moves with respect to said radiated reflective pattern image, said generated reflective pattern changes in accordance with said movement.
  2. 2
    An apparatus as described in Claim 1, wherein said means for generating a reflective pattern comprises:a cathode ray tube (CRT) for displaying an image;a liquid crystal light valve (LCLV) for forming a reflective pattern of said CRT displayed image;a fiber optic faceplate for optically connecting said CRT to said LCLV;and a computer, electrically connected to said CRT, for controlling said CRT displayed image.
  3. 3
    An apparatus as described in Claim 2, wherein said computer controls an image on a screen of said CRT, wherein said image is optically transferred by said fiber optic faceplate from said CRT screen to said LCLV, and wherein a reflective pattern of said image is formed on a face of said LCLV.
  4. 4
    An apparatus as described in Claim 3, wherein said reflective pattern of said CRT displayed image is used as a lithographic mask pattern for exposing a photoresist coated surface of a semiconductor wafer.
  5. 5
    An apparatus as described in Claim 1, wherein said means for irradiating comprises a means for irradiating with monochromatic light.
  6. 6
    An apparatus as described in Claim 5, wherein said means for irradiating with monochromatic light comprises:a source for providing a polarized monochromatic light beam;a collimator for collimating said polarized monochromatic light beam;a LCLV for forming a reflective pattern from which said collimated and polarized monochromatic light beam is reflected;a plurality of polarizing beam splitters for directing said collimated and polarized monochromatic light beam;a quarter wave plate (QWP) for changing the polarization of said collimated and polarized monochromatic light beam;and a lens system for providing focus to said collimated and polarized monochromatic light beam.
  7. 7
    An apparatus as described in Claim 6, wherein said polarized monochromatic light beam is collimated by said collimator, wherein said collimated and polarized monochromatic light beam is reflected from said LCLV reflective pattern, and wherein said reflected, collimated, and polarized monochromatic light beam is convergently focused onto said surface by said lens system.
  8. 8
    An apparatus as described in Claim 7, wherein an image of said LCLV reflective pattern is irradiated onto said surface by said convergently focused and polarized monochromatic light beam.
  9. 9
    An apparatus as described in Claim 8, wherein said surface is a photoresist coated surface of a semiconductor wafer, and wherein said reflective pattern image is exposed onto said photoresist coated surface by said convergently focused polarized monochromatic light beam.
  10. 10
    An apparatus as described in Claim 6, wherein said source for providing a polarized monochromatic light beam is an argon-ion laser.
  11. 11
    An apparatus as described in Claim 1, wherein said means for determining the position of said irradiation sensitive surface comprises:a source for providing a polarized monochromatic light beam;a collimator for collimating said polarized monochromatic light beam;a plurality of beam splitters for directing said collimated and polarized monochromatic light beam;a lens system for providing a converging focus to said collimated and polarized monochromatic light beam;a means for capturing a radiated image of said irradiation sensitive surface;and a means for comparing said captured radiated surface image with an expected surface image.
  12. 12
    An apparatus as described in Claim 11, wherein said polarized monochromatic light beam is convergently focused onto said surface by said lens system, and wherein said polarized monochromatic light beam is reflected from said surface and directed toward said means for capturing a radiated surface image.
  13. 13
    An apparatus as described in Claim 12, wherein said means for capturing a radiated surface image is a charge coupled device (CCD) camera.
  14. 14
    An apparatus as described in Claim 11, wherein said means for comparing said captured radiated surface image with an expected surface image is a computer. PD-D91034
  15. 15
    An apparatus as described in Claim 14, wherein said computer determines the position of said surface with respect to said polarized monochromatic light beam by comparing said captured radiated surface image to a computer stored expected surface image.
  16. 16
    An apparatus as described in Claim 14, wherein said computer also controls said means for generating a reflective pattern such that said reflective pattern is controlled to change in accordance with the determined position of said surface.
  17. 17
    An apparatus as described in Claim 11, wherein said irradiation sensitive surface is a photoresist coated semiconductor wafer surface, and wherein said polarized monochromatic light beam has a wavelength such that said photoresist is not exposed.
  18. 18
    An apparatus as described in Claim 17, wherein said source for providing a polarized monochromatic light beam is a helium-neon laser.
  19. 19
    A method for micropatterning a surface, said surface having a property that is sensitive to irradiation, said method comprising the steps of:generating a pattern from which polarized monochromatic radiation may be reflected;irradiating said irradiation sensitive surface with a radiation of polarized monochromatic light that is reflected from said generated pattern so as to radiate an image of said generated pattern;determining the position of said irradiation sensitive surface with respect to said polarized monochromatic radiation that radiates an image of said generated pattern;and updating said generated pattern to correspond with said determined irradiation sensitive surface position, such that said generated pattern changes in accordance with any determined position movement in said irradiation sensitive surface.
  20. 20
    A method as described in Claim 19, wherein said step of generating a pattern includes the substeps of:displaying an image on a screen of a CRT;optically connecting said CRT screen to a LCLV;and forming a reflective pattern of said CRT displayed image on a face of said LCLV.
  21. 21
    A method as described in Claim 19, wherein said step of irradiating said irradiation sensitive surface includes the substeps of:providing a polarized monochromatic light beam;collimating said polarized monochromatic light beam;directing said collimated and polarized monochromatic light beam toward said generated pattern;reflecting said directed, collimated, and polarized monochromatic light beam from said generated pattern;directing said reflected, collimated, and polarized monochromatic light beam toward a lens system;focusing said directed, reflected, collimated, and polarized monochromatic light beam onto said irradiation sensitive surface;and exposing an image of said generated pattern onto said irradiation sensitive surface with said focused, directed, reflected, and polarized monochromatic light beam.
  22. 22
    A method as described in Claim 19, wherein said step of determining the position of said irradiation sensitive surface includes the substeps of:providing a polarized monochromatic light beam;collimating said polarized monochromatic light beam;directing said collimated and polarized monochromatic light beam toward a lens system;focusing said directed, collimated, and polarized monochromatic light beam onto said irradiation sensitive surface;reflecting said directed, focused, and polarized monochromatic light beam from said irradiation sensitive surface;collimating said reflected, focused, and polarized monochromatic light beam;directing said collimated, reflected, and polarized monochromatic light beam toward a CCD camera;capturing an image of said irradiation sensitive surface from said directed, collimated, reflected, and polarized monochromatic light beam by said CCD camera;and comparing said captured irradiation sensitive surface image to an expected surface image.
  23. 23
    A method as described in Claim 19, wherein said step of updating said generated pattern includes the substeps of:determining an alignment of said radiated image of said generated pattern onto said irradiation sensitive surface position by said step of determining the position of said irradiation sensitive surface with respect to said polarized monochromatic radiation that radiates said generated pattern image;and controlling a CRT screen to display an updated image from which said pattern is generated, wherein said generated pattern is updated from said CRT displayed updated image, wherein an image of said updated pattern is radiated onto said irradiation sensitive surface by said polarized monochromatic radiation, and wherein said updated radiated pattern image is properly aligned onto said irradiation sensitive surface. .
  24. 24
    A method as described in Claim 19, additionally including the step of applying a coating of photoresist onto said surface to enable said surface to be irradiation sensitive.
Independent claims24