EP1122020A2

Beam homogenizer, laser irradiation apparatus and method of fabricating a semiconductor device

Abstract

An optical system (in Figs. 1A and 1B) wherein a rectilinear laser beam of homogeneous energy distribution is defined for annealing a non-single crystalline semiconductor film (a surface to-be-irradiated 1108), is constructed of reflectors (1106, 1107 etc.) easily and inexpensively without including lenses of transmission type. The rectilinear laser beam can be defined having a length of at least 600 (mm) which corresponds to the shorter latus of a large-sized substrate for mass production.

EP1122020A2, drawing sheet 1
Sheet 1 of 30

Term

Term ended

Projected expiry passed 2 February 2021, 5.6 years ago.

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41 claims: 12 independent, 29 dependent

  1. 1
    A beam homogenizer for forming a rectilinear laser beam on an irradiated surface, comprising:two reflectors for splitting said laser beam.
  2. 3
    A beam homogenizer for forming a rectilinear laser beam on an irradiated surface, comprising:two reflectors for beam splitting, each of said reflectors including a plurality of reflective surfaces, wherein any of said plurality of reflective surfaces is in agreement with a locus which is depicted by a part of a parabola when the part of the parabola is translated in a direction perpendicular to a plane containing said parabola.
  3. 5
    A beam homogenizer for forming a rectilinear laser beam on an irradiated surface, comprising:two reflectors for beam splitting;one of said reflectors including a plurality of reflective surfaces, any of said plurality of reflective surfaces being in agreement with a locus which is depicted by a part of a parabola when the part of the parabola is translated in a direction perpendicular to a plane containing said parabola;the other of said reflectors including a plurality of plane mirrors.
  4. 7
    A laser irradiation apparatus for forming a rectilinear laser beam on an irradiated surface, comprising:a laser oscillator;and two reflectors for splitting said laser beam, each including a plurality of reflective surfaces, wherein any of said plurality of reflective surfaces is in agreement with a locus which is depicted by a part of a parabola when the part of the parabola is translated in a direction perpendicular to a plane containing said parabola.
  5. 11
    A laser irradiation apparatus for forming a rectilinear laser beam on an irradiated surface, comprising:a laser oscillator;a first reflector for splitting said laser beam, said first reflector including a plurality of reflective surfaces;and a second reflector for splitting said laser beam, said second reflector including a plurality of plane mirrors, wherein any of said plurality of reflective surfaces is in agreement with a locus which is depicted by a part of a parabola when the part of the parabola is translated in a direction perpendicular to a plane containing said parabola.
  6. 15
    A semiconductor device comprising:a semiconductor film on an insulating surface;and a gate electrode over said semiconductor film with a gate insulating film interposed therebetween, wherein said semiconductor film has been irradiated with a rectilinear laser beam formed by a beam homogenizer comprising two reflectors for splitting said laser beam.
  7. 18
    A method of fabricating a semiconductor device comprising thin film transistors, said method comprising the steps of:forming a non-single crystalline semiconductor film over a substrate;emitting a laser beam;expanding said laser beam by either of two cylindrical parabolic mirrors and two parabolic mirrors;altering a traveling direction of said expanded laser beam by a plurality of plane mirrors;splitting said laser beam of the altered traveling direction by two beam-splitting reflectors each including a plurality of cylindrical parabolic mirrors;combining said split laser beams into one rectilinear laser beam on an irradiated surface so as to homogenize an energy distribution of the rectilinear laser beam on said irradiated surface;setting said substrate on a stage;bringing a surface of said non-single crystalline semiconductor film into agreement with said irradiated surface;and moving said stage relatively to said rectilinear laser beam so as to scan said non-single crystalline semiconductor film under irradiation with said rectilinear laser beam.
  8. 22
    A method of fabricating a semiconductor device comprising thin film transistors, said method comprising the steps of:forming a non-single crystalline semiconductor film over a substrate;emitting a laser beam;expanding said laser beam by either of two cylindrical parabolic mirrors and two parabolic mirrors;splitting said expanded laser beam by two beam-splitting reflectors each including a plurality of cylindrical parabolic mirrors;combining said split laser beams into one rectilinear laser beam on an irradiated surface so as to homogenize an energy distribution of the rectilinear laser beam on the irradiated surface;setting said substrate on a stage;bringing a surface of said non-single crystalline semiconductor film into agreement with said irradiated surface;and moving the stage relatively to said rectilinear laser beam so as to scan said non-single crystalline semiconductor film under irradiation with said rectilinear laser beam.
  9. 26
    A method of fabricating a semiconductor device comprising thin film transistors, said method comprising the steps of:forming a non-single crystalline semiconductor film over a substrate;emitting a laser beam;expanding said laser beam by either of two cylindrical parabolic mirrors and two parabolic mirrors;altering a traveling direction of the expanded laser beam by a plurality of plane mirrors;splitting said laser beam of the altered traveling direction by a first beam-splitting reflector including a plurality of cylindrical parabolic mirrors, and a second beam-splitting reflector including a plurality of plane mirrors;combining said split laser beams into one rectilinear laser beam on an irradiated surface so as to homogenize an energy distribution of the rectilinear laser beam on the irradiated surface;setting said substrate on a stage;bringing a surface of said non-single crystalline semiconductor film into agreement with said irradiated surface;and moving the stage relatively to said rectilinear laser beam so as to scan said non-single crystalline semiconductor film under irradiation with said rectilinear laser beam.
  10. 30
    A method of fabricating a semiconductor device comprising thin film transistors, said method comprising the steps of:forming a non-single crystalline semiconductor film over a substrate;emitting a laser beam;expanding said laser beam by either of two cylindrical parabolic mirrors and two parabolic mirrors;splitting said expanded laser beam by a first beam-splitting reflector including a plurality of cylindrical parabolic mirrors, and a second beam-splitting reflector including a plurality of plane mirrors;combining said split laser beams into one rectilinear laser beam on an irradiated surface so as to homogenize an energy distribution of the rectilinear laser beam on the irradiated surface;setting said substrate on a stage;bringing a surface of said non-single crystalline semiconductor film into agreement with said irradiated surface;and moving the stage relatively to said rectilinear laser beam so as to scan said non-single crystalline semiconductor film under irradiation with said rectilinear laser beam.
  11. 34
    A method of fabricating a semiconductor device comprising thin film transistors, said method comprising the steps of:forming a non-single crystalline semiconductor film over a substrate;emitting a laser beam;splitting said laser beam by two beam-splitting reflectors each including a plurality of cylindrical parabolic mirrors;combining said split laser beams into one rectilinear laser beam on an irradiated surface so as to homogenize an energy distribution of the rectilinear laser beam on the irradiated surface;setting said substrate on a stage;bringing a surface of said non-single crystalline semiconductor film into agreement with said irradiated surface;and moving the stage relatively to said rectilinear laser beam so as to scan said non-single crystalline semiconductor film under irradiation with said rectilinear laser beam.
  12. 38
    A method of fabricating a semiconductor device comprising thin film transistors, said method comprising the steps of:forming a non-single crystalline semiconductor film over a substrate;emitting a laser beam;splitting said laser beam by a first beam-splitting reflector including a plurality of cylindrical parabolic mirrors, and a second beam-splitting reflector including a plurality of plane mirrors, combining said split laser beams into one rectilinear laser beam on an irradiated surface so as to homogenize an energy distribution of the rectilinear laser beam on said irradiated surface;setting said substrate on a stage;bringing a surface of said non-single crystalline semiconductor film into agreement with said irradiated surface;and moving the stage relatively to said rectilinear laser beam so as to scan said non-single crystalline semiconductor film under irradiation with said rectilinear laser beam.