US20040171237A1

Laser irradiation method, laser irradiation apparatus, and method for manufacturing semiconductor device

Claim Score by NHIP

Read claim 7, the broadest

Abstract

When the CW laser oscillator is employed in the manufacturing process of the semiconductor device, it is expected to obtain the device of high performance. However, the CW oscillator provides only a small beam spot and forms an inferior crystalline region when it is scanned on the semiconductor film. It is necessary to minimize such an inferior crystalline region because it gives a problem in terms of high integration of the semiconductor element. In view of the problem, the present invention is to form a long crystalline region as suppressing the formation of the inferior crystalline region by irradiating the fundamental wave with the harmonic supplementarily (refer to <cross-reference target="DRAWINGS">FIG. 1</CROSS-REFERENCE>). The present invention also includes a constitution in which a part having high energy density in the fundamental wave is irradiated to a part having low energy density in the harmonic

US20040171237A1, drawing sheet 1
Sheet 1 of 20

Term

Term ended

Projected expiry passed 6 October 2023, 3 years ago.

  1. Priority
  2. Filed
  3. Published
  4. Projected expiry
  5. Today

17 claims: 6 independent, 11 dependent

  1. 1
    A laser irradiation apparatus comprising;a first laser oscillator outputting a first laser beam having a wavelength not longer than that of visible light;means for shaping the first laser beam into an elongated beam on a surface to be irradiated wherein the elongated beam has at least a first portion and a second portion, said first portion having a lower energy density than the second portion;a second laser oscillator outputting a second laser beam of a fundamental wave;means for irradiating the second laser beam to the first portion of the elongated beam having the lower energy density;means for moving the surface to be irradiated in a first direction relatively to the first laser beam and the second laser beam;and means for moving the surface to be irradiated in a second direction relatively to the first laser beam and the second laser beam.
  2. 2
    A laser irradiation apparatus comprising;a first laser oscillator outputting a first laser beam having a wavelength not longer than that of visible light;means for shaping the first laser beam into an elongated beam on a surface to be irradiated wherein the elongated beam has at least a first portion and a second portion, said first portion having a lower energy density than the second portion;a second laser oscillator outputting a second laser beam of a fundamental wavelength wherein the second laser beam has at least a first portion and a second portion having a higher energy density than the first portion;means for irradiating the second portion of the second laser beam having the higher energy density to the first portion of the elongated beam having the lower energy density;means for moving the surface to be irradiated in a first direction relatively to the first laser beam and the second laser beam;and means for moving the surface to be irradiated in a second direction relatively to the first laser beam and the second laser beam.
  3. 7
    Broadest claimClaim Score 62, broad(NHIP)A laser irradiation method comprising the steps of;shaping a first laser beam having a wavelength not longer than that of visible light into an elongated beam on a surface to be irradiated;and irradiating the surface with the elongated beam wherein an irradiation area of the elongated beam has at least a first portion and a second portion, said first portion having a lower energy density than the second portion;irradiating the surface with a second laser beam concurrently with the elongated beam in such a manner that an irradiation area of the second laser beam overlaps at least the first portion of the irradiation area of the elongated beam while moving the surface relatively to the elongated beam and the second laser beam in a first direction.
  4. 8
    A laser irradiation method comprising the steps of;shaping a first laser beam having a wavelength not longer than that of visible light into an elongated beam on a surface to be irradiated;irradiating the surface with the elongated beam wherein an irradiation area of the elongated beam on the surface has at least a first portion and a second portion, said first portion having a lower energy density than said second portion;irradiating the surface with a second laser beam concurrently with the elongated beam wherein an irradiation area of the second laser beam on the surface has at least a first portion and a second portion having a higher energy density than the first portion, said second laser beam having a fundamental wave, wherein the irradiation of the elongated beam and the second laser beam is performed in such a manner that the second portion of the irradiation area of the second laser beam overlaps at least the first portion of the irradiation area of the elongated beam while moving the surface relatively to the elongated beam and the second laser beam in a first direction.
  5. 12
    A method of manufacturing a semiconductor device comprising the steps of;forming a non-single crystalline semiconductor film over a substrate;shaping a first laser beam emitted from a first laser oscillator into an elongated beam on a surface to be irradiated wherein the first laser beam has a wavelength not longer than that of visible light;irradiating the non-single crystalline semiconductor film with the elongated beam wherein an irradiation area of the elongated beam has at least a first portion and a second portion, said first portion having a lower energy density than the second portion;irradiating the non-single crystalline semiconductor film with a second laser beam emitted from a second laser oscillator, said second laser beam having a fundamental wave wherein the irradiation of the second laser beam is performed concurrently with the irradiation of the elongated beam in such a manner that an irradiation area of the second laser beam overlaps at least the first portion of the irradiation area of the elongated beam;and moving the substrate relatively to the elongated beam and the second laser beam in a first direction, thereby, forming a crystal grain region in the non-single crystalline semiconductor film;and moving the substrate in a second direction relatively to the elongated beam and the second laser beam.
  6. 13
    A method of manufacturing a semiconductor device comprising the steps of;forming a non-single crystalline semiconductor film over a substrate, shaping a first laser beam emitted from a first laser oscillator into an elongated beam on a surface to be irradiated wherein the first laser beam has a wavelength not longer than that of visible light;irradiating the non-single crystalline semiconductor film with the elongated beam wherein an irradiation area of the elongated beam has at least a first portion and a second portion, said first portion having a lower energy density than the second portion;irradiating the non-single crystalline semiconductor film with a second laser beam emitted from a second laser oscillator outputting a fundamental wave wherein an irradiation area of the second laser beam has at least a first portion and a second portion, said second portion having a higher energy density than the first portion;forming a crystal grain region while moving the substrate in a first direction relatively to the elongated beam and the second laser beam;moving the substrate in a second direction relatively to the elongated beam and the second laser beam, wherein the irradiation of the elongated beam and the second laser beam is performed in such a manner that the second portion of the irradiation area of the second laser beam overlaps at least the first portion of the irradiation area of the elongated laser beam.