EP1580579A2

Beam homogenizer and laser irradiation apparatus

Abstract

Since the arrangement of the optical elements in the optical system is limited because of their characteristic, designing the optical system for forming the desired laser beam is difficult. An object of the present invention is to design the optical system having the desired function without being affected by the limit in the arrangement of the optical elements. Consequently, an off-axis cylindrical lens array is used as a cylindrical lens array acting on a long-side direction of the beam.

EP1580579A2, drawing sheet 1
Sheet 1 of 22

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Projected expiry passed 21 March 2025, 1.5 years ago.

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63 claims: 15 independent, 48 dependent

  1. 1
    A lens array comprising:a plurality of off-axis cylindrical lenses;wherein a generating line of each of the off-axis cylindrical lenses is apart from a center axis thereof in an opposite direction away from a center of the lens array, and    wherein a distance between the generating line and the center axis of the off-axis cylindrical lenses increases from the center of the lens array toward both ends of the lens array.
  2. 2
    A lens array comprising:a plurality of off-axis cylindrical lenses;wherein a generating line of each of the off-axis cylindrical lenses is apart from a center axis thereof in an opposite direction away from a center of the array, and    wherein a distance between the generating line and the center axis of one of the plurality of the off-axis cylindrical lenses is larger than that of another one of the plurality of the off-axis cylindrical lenses,    wherein said one of the plurality of the off-axis cylindrical lenses is located more distant from the center of the lens array than said another one of the plurality of the off-axis cylindrical lenses.
  3. 3
    A beam homogenizer comprising:a first optical element for dividing a spot of a laser beam in one direction;and a second optical element for converting the spot of the laser beam in the one direction;wherein the first optical element is set at a side of a light source and the second optical element is set at a side of an irradiation surface, and    wherein the irradiation surface is conjugated through the second optical element with a hypothetical plane where laser beams divided by the first optical element are superposed when the divided beams are extended to the side of the light source.
  4. 7
    A beam homogenizer comprising:a first optical element for forming a first laser beam by dividing a spot of a laser beam from a light source in a short-side direction of a rectangular shape;a second optical element for forming a second laser beam by dividing a spot of the first laser beam in a long-side direction of the rectangular shape;a third optical element for forming a third laser beam by converging a spot of the second laser beam in the long-side direction;and a fourth optical element for forming a fourth laser beam that is emitted to an irradiation surface by converging a spot of the third laser beam spot in the short-side direction,    wherein the irradiation surface is conjugated through the third optical element with a hypothetical plane where the divided laser beams are superposed when the second laser beam is extended to a side of the light source.
  5. 11
    A beam homogenizer comprising:a first optical element for forming a first laser beam by dividing a spot of a laser beam from a light source in a short-side direction of a rectangular shape;a second optical element for forming a second laser beam by dividing a spot of the first laser beam in a long-side direction of the rectangular shape;a third optical element for forming a third laser beam by converging a spot of the second laser beam in the long-side direction;and a fourth optical element for forming a fourth laser beam that is emitted to an irradiation surface by converging a spot of the third laser beam spot in the short-side direction,    wherein the first optical element, the second optical element, the third optical element and the fourth optical element are arranged in this order from a side of the light source to a side of the irradiation surface.
  6. 15
    A beam homogenizer comprising:an off-axis cylindrical lens array for dividing a spot of a laser beam in one direction;and a converging optical element for converging the spot of the laser beam in the one direction.
  7. 19
    A beam homogenizer comprising:an optical element for dividing a spot of a laser beam in a short-side direction of a rectangular shape;an off-axis cylindrical lens array for dividing the spot of the laser beam in a long-side direction of the rectangular shape;an optical element for converging the spot of the laser beam in the long-side direction;and an optical element for converging the spot of the laser beam in the short-side direction.
  8. 23
    A beam homogenizer comprising:an optical element for forming a first laser beam by dividing a spot of a laser beam from a light source in a short-side direction of a rectangular shape;an off-axis cylindrical lens array for forming a second laser beam by dividing a spot of the first laser beam in a long-side direction of the rectangular shape;an optical element for forming a third laser beam by converging a spot of the second laser beam in the long-side direction;and an optical element for forming a fourth laser beam that is emitted to an irradiation surface by converging a spot of the third laser beam in the short-side direction.
  9. 26
    A laser irradiation apparatus comprising:a laser oscillator for oscillating a laser beam;a first optical element for dividing a spot of a laser beam in one direction;and a second optical element for converging the spot of the laser beam in the one direction;wherein the first optical element is set at a side of the laser oscillator, and the second optical element is set at a side of an irradiation surface, and    wherein the irradiation surface is conjugated through the second optical element with a hypothetical plane where the divided beams are superposed when the divided beams are extended to the side of the laser oscillator.
  10. 32
    A laser irradiation apparatus comprising:a laser oscillator for oscillating a first laser beam;a first optical element for forming a second laser beam by dividing a spot of the first laser beam in a short-side direction of a rectangular shape;a second optical element for forming a third laser beam by dividing a spot of the second laser beam in a long-side direction of the rectangular shape;a third optical element for forming a fourth laser beam by converging a spot of the third laser beam in the long-side direction;and a fourth optical element for forming a fifth laser beam that is emitted to an irradiation surface by converging a spot of the fourth laser beam in the short-side direction;wherein the irradiation surface is conjugated through the third optical element with a hypothetical plane where the divided beams are superposed when the third laser beam is extended to a side of the laser oscillator.
  11. 38
    A laser irradiation apparatus comprising:a laser oscillator for oscillating a first laser beam;a first optical element for forming a second laser beam by dividing a spot of the first laser beam in a short-side direction of a rectangular shape;a second optical element for forming a third laser beam by dividing a spot of the second laser beam in a long-side direction of the rectangular shape;a third optical element for forming a fourth laser beam by converging a spot of the third laser beam in the long-side direction;and a fourth optical element for forming a fifth laser beam that is emitted to an irradiation surface by converging a spot of the fourth laser beam in the short-side direction;wherein the first optical element, the second optical element, the third optical element and the fourth optical element are arranged in this order from a side of the laser oscillator to a side of the irradiation surface.
  12. 44
    A laser irradiation apparatus comprising:a laser oscillator for oscillating a laser beam;an off-axis cylindrical lens array for dividing a spot of the laser beam in one direction;and an optical element for converging the spot of the laser beam in the one direction.
  13. 50
    A laser irradiation apparatus comprising:a laser oscillator for oscillating a laser beam;an optical element for dividing a spot of the laser beam in a short-side direction of a rectangular shape;an off-axis cylindrical lens array for dividing the spot of the laser beam in a long-side direction of the rectangular shape;an optical element for converging the spot of the laser beam in the long-side direction;and an optical element for converging the spot of the laser beam in the short-side direction.
  14. 56
    A laser irradiation apparatus comprising:a laser oscillator for oscillating a first laser beam;a cylindrical lens array for forming a second laser beam by dividing a spot of the first laser beam in a short-side direction of a rectangular shape;an off-axis cylindrical lens array for forming a third laser beam by dividing a spot of the second laser beam in a long-side direction of the rectangular shape;a first cylindrical lens for forming a fourth laser beam by converging a spot of the third laser beam in the long-side direction;and a second cylindrical lens for forming a fifth laser beam that is emitted to an irradiation surface by converging a spot of the fourth laser beam in the short-side direction.
  15. 61
    A method for manufacturing a semiconductor device comprising the steps of:forming a semiconductor film over a substrate;and performing a laser annealing to the semiconductor film by using a beam homogenizer comprising an off-axis cylindrical lens array and an converging optical element,    wherein the off-axis cylindrical lens array divides a spot of a laser beam and the converging optical element converges the spot of the laser beam,    wherein the laser beams transmitted through the off-axis cylindrical lens array are superposed on the semiconductor film, and    wherein an irradiation surface is conjugated through the converging optical element with a hypothetical plane where laser beams divided by the off-axis cylindrical lens array are superposed when the divided beams are extended to a side of a light source.