IP Library › Granted Patent US 7,304,005
Granted Patent B2
US 7,304,005 · App. 10/799,626 · Granted Dec 4, 2007

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

Assignee: Semiconductor Energy Laboratory Co., Ltd.
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 7,304,005
App. No.
10/799,626
Granted
Dec 4, 2007
Kind
B2
Abstract

A second laser light of a continuous wave oscillation is irradiated to a region melted by a first laser light of a pulsed oscillation having a harmonic. Specifically, the first laser light has a wavelength not longer than that of visible light (830 nm, preferably not more than 780 nm). The absorption coefficient of the second laser light to a semiconductor film considerably increases because the semiconductor film is melted by the first laser light, and therefore the second laser light becomes easy to be absorbed in the semiconductor film.

Claims (46)

1. A method for manufacturing a semiconductor device comprising the step of:

crystallizing a semiconductor film formed over an insulating surface by irradiating first laser light generated in a pulse oscillation having a wavelength at which an absorption coefficient to the semiconductor film is 1×10 4 cm −1 or more and second laser light generated in a continuous wave oscillation,

wherein when the first laser light and the second laser light are irradiated, a region irradiated by the first laser light and a region irradiated by the second laser light are overlapped in such a way that the region irradiated by the first laser light falls within the region irradiated by the second laser light, and

wherein the second laser light is a solid-state laser light and has a fundamental wave.

2. A method for manufacturing a semiconductor device according to claim 1 ,

wherein the first laser light has a second harmonic.

3. A method for manufacturing a semiconductor device according to claim 1 , further comprising the step of performing a heating process to the semiconductor film.

4. A method for manufacturing a semiconductor device according to claim 3 ,

wherein the heating process is performed using a gas RTA.

5. A method for manufacturing a semiconductor device comprising the step of:

crystallizing a semiconductor film formed over an insulating surface by irradiating first laser light generated in a pulse oscillation having a wavelength, at which an absorption coefficient to the semiconductor film is 1 ×10 4 cm −1 or more and which is not longer than that of visible light, and by irradiating second laser light generated in a continuous wave oscillation,

wherein when the first laser light and the second laser light are irradiated, a region irradiated by the first laser light and a region irradiated by the second laser light are overlapped in such a way that the region irradiated by the first laser light falls within the region irradiated by the second laser light, and

wherein the second laser light is a solid-state laser light and has a fundamental wave.

6. A method for manufacturing a semiconductor device comprising the step of:

adding a catalyst element in a semiconductor film:

performing a heating process using a gas RTA after adding the catalyst element; and

crystallizing the semiconductor film formed over an insulating surface by irradiating first laser light generated in a pulse oscillation having a wavelength at which an absorption coefficient to the semiconductor film is 1 ×10 4 cm −1 or more and second laser light generated in a continuous wave oscillation,

wherein when the first laser light and the second laser light are irradiated, a region irradiated by the first laser light and a region irradiated by the second laser light are overlapped in such a way that the region irradiated by the first laser light falls within the region irradiated by the second laser light, and

wherein the second laser light is a solid-state laser light and has a fundamental wave.

7. A method for manufacturing a semiconductor device comprising the step of:

adding a catalyst element in a semiconductor film:

performing a heating process using a gas RTA after adding the catalyst element; and

crystallizing the semiconductor film formed over an insulating surface by irradiating first laser light generated in a pulse oscillation having a wavelength, at which an absorption coefficient to the semiconductor film is 1 ×10 4 cm −1 or more and which is not longer than that of visible light, and by irradiating second laser light generated in a continuous wave oscillation,

wherein when the first laser light and the second laser light are irradiated, a region irradiated by the first laser light and a region irradiated by the second laser light are overlapped in such a way that the region irradiated by the first laser light falls within the region irradiated by the second laser light, and

wherein the second laser light is a solid-state laser light and has a fundamental wave.

8. A method for manufacturing a semiconductor device according to claim 5 ,

wherein the first laser light has a second harmonic.

9. A method for manufacturing a semiconductor device according to claim 5 further comprising the step of performing a heating process to the semiconductor film.

10. A method for manufacturing a semiconductor device according to claim 9 ,

wherein the heating process is performed using a gas RTA.

11. A method for manufacturing a semiconductor device according to claim 6 ,

wherein the first laser light has a second harmonic.

12. A method for manufacturing a semiconductor device according to claim 7 ,

wherein the first laser light has a second harmonic.

13. A method for manufacturing a semiconductor device according to claim 5 ,

wherein the semiconductor film melts in the region irradiated by the first laser light.

14. A method for manufacturing a semiconductor device according to claim 5 ,

wherein the semiconductor film melts partially by the first laser light in the region irradiated by the first laser light, and the semiconductor film melts completely by the second laser light.

15. A method for manufacturing a semiconductor device according to claim 6 ,

wherein the semiconductor film melts in the region irradiated by the first laser light.

16. A method for manufacturing a semiconductor device according to claim 6 ,

wherein the semiconductor film melts partially by the first laser light in the region irradiated by the first laser light, and the semiconductor film melts completely by the second laser light.

17. A method for manufacturing a semiconductor device according to claim 7 ,

wherein the semiconductor film melts in the region irradiated by the first laser light.

18. A method for manufacturing a semiconductor device according to claim 7 ,

wherein the semiconductor film melts partially by the first laser light in the region irradiated by the first laser light, and the semiconductor film melts completely by the second laser light.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 15, 2004
From: YAMAZAKI, SHUNPEI; TANAKA, KOICHIRO
To: SEMICONDUCTOR ENERGY LABORATORY CO., LTD.
Reel/Frame 015094/0101 →
Priority Claims (1)
JP 2003-071608 · Mar 17, 2003 · national
Continuity (1)
Related Publication 20040253838A1 · Dec 16, 2004