IP Library Granted Patent US 11,211,239
Granted Patent B2
US 11,211,239 · App. 16/786,542 · Granted Dec 28, 2021

Extreme ultraviolet light generation apparatus and extreme ultraviolet light generation apparatus controlling method

Inventors: Atsushi Ueda (Oyama, JP); Takashi Saito (Oyama, JP)
Assignee: Gigaphoton Inc.
H01J61/28H01J61/025H01J61/12
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Quick Facts
Patent No.
US 11,211,239
App. No.
16/786,542
Granted
Dec 28, 2021
Kind
B2
Abstract

An EUV light generation apparatus includes: a chamber; an EUV light condensing mirror positioned inside the chamber and having a reflective surface that determines a first focal point and a second focal point, the reflective surface and the second focal point being positioned on respective sides of a first surface; at least one magnet configured to generate a magnetic field at and around the first focal point; a first gas supply unit configured to supply first gas to the reflective surface in the chamber and opened near an outer peripheral part of the reflective surface; a second gas supply unit configured to supply second gas into the chamber and opened at a position between the first surface and the second focal point; and a discharge device configured to discharge gas inside the chamber and opened at a position between the first focal point and the at least one magnet.

Claims (36)

1. An extreme ultraviolet light generation apparatus comprising:

a chamber having a conical shape including a first end part on a large-diameter side and a second end part on a small-diameter side;

an aperture formed at the second end part to cause gas to flow into the chamber;

an EUV light condensing mirror positioned inside the chamber and having a reflective surface that determines a first focal point, a second focal point, and a first straight line passing through the first and second focal points, the second focal point being farther from the reflective surface than the first focal point;

at least one magnet configured to generate a magnetic field at and around the first focal point;

a first gas supply unit configured to supply first gas into the chamber and opened near an outer peripheral part of the reflective surface to cause the first gas to flow to the reflective surface;

a discharge device configured to discharge gas inside the chamber and connected to the chamber at an exhaust port positioned between the first focal point and the at least one magnet;

a second gas supply unit configured to supply second gas into the chamber and opened in a slit shape surrounding the first straight line at a position between the second focal point and a first plane that is orthogonal to the first straight line and passes through the exhaust port;

a beam path wall disposed in a through-hole of the EUV light condensing mirror that causes the laser beam to pass through an inside of the beam path wall; and

a third gas supply unit configured to supply third gas into the chamber through the inside of the beam path wall.

2. The extreme ultraviolet light generation apparatus according to claim 1 , wherein

the at least one magnet includes a first magnet and a second magnet disposed on respective sides of the first focal point, and

the discharge device is opened at a position near the first magnet and a position near the second magnet.

3. The extreme ultraviolet light generation apparatus according to claim 1 , wherein the first gas supply unit causes the first gas to flow in a direction approaching the first straight line.

4. The extreme ultraviolet light generation apparatus according to claim 1 , wherein the first gas supply unit has a plurality of first openings disposed along the outer peripheral part of the EUV light condensing mirror.

5. The extreme ultraviolet light generation apparatus according to claim 1 , wherein the second gas contains etching gas.

6. The extreme ultraviolet light generation apparatus according to claim 1 , wherein the first gas contains hydrogen gas.

7. The extreme ultraviolet light generation apparatus according to claim 1 , wherein the second gas contains hydrogen gas.

8. The extreme ultraviolet light generation apparatus according to claim 1 , wherein the temperature of the second gas is equal to or lower than 16° C.

9. The extreme ultraviolet light generation apparatus according to claim 1 , wherein the discharge device discharges gas inside the chamber such that pressure inside the chamber becomes 50 Pa to 150 Pa inclusive.

10. The extreme ultraviolet light generation apparatus according to claim 1 , wherein a flow rate of the second gas supplied by the second gas supply unit is 0.6 to 4 times of a flow rate of the first gas supplied by the first gas supply unit.

11. The extreme ultraviolet light generation apparatus according to claim 1 , wherein a flow rate of the second gas supplied by the second gas supply unit is larger than a flow rate of the first gas supplied by the first gas supply unit.

12. The extreme ultraviolet light generation apparatus according to claim 1 , wherein a flow rate of the first gas supplied by the first gas supply unit is equal to or smaller than 120 liters per minute converted under one atmospheric pressure.

13. The extreme ultraviolet light generation apparatus according to claim 1 , wherein a flow rate of the second gas supplied by the second gas supply unit is equal to or smaller than 200 liters per minute converted under one atmospheric pressure.

14. The extreme ultraviolet light generation apparatus according to claim 1 , wherein the first gas contains etching gas.

15. An extreme ultraviolet light generation apparatus controlling method for an extreme ultraviolet light generation apparatus including:

a chamber having a conical shape including a first end part on a large-diameter side and a second end part on a small-diameter side;

an aperture formed at the second end part to cause gas to flow into the chamber;

an EUV light condensing mirror positioned inside the chamber and having a reflective surface that determines a first focal point a second focal point, and a first straight line passing through the first and second focal points, the second focal point being farther from the reflective surface than the first focal point; and

a beam path wall disposed in a through-hole of the EUV light condensing mirror that causes the laser beam to pass through an inside of the beam path wall,

the method comprising:

generating a magnetic field at and around the first focal point;

supplying first gas into the chamber from near an outer peripheral part of the reflective surface to the reflective surface;

discharging gas inside the chamber from an exhaust port through which the magnetic field passes;

supplying second gas into the chamber from a slit surrounding the first straight line at a position between the second focal point and a first plane that is orthogonal to the first straight line and passes through the exhaust port; and

supplying third gas into the chamber through the inside of the beam path wall.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 10, 2020
From: UEDA, ATSUSHI; SAITO, TAKASHI
To: GIGAPHOTON INC.
Reel/Frame 051773/0007 →
Continuity (2)
Continuation PCTJP2017033747 · Sep 19, 2017
Related Publication 20200185212A1 · Jun 11, 2020