Prolonging optical element lifetime in an EUV lithography system
Degradation of the reflectivity of one or more reflective optical elements in a system for generating EUV radiation is reduced by the controlled introduction of a gas into a vacuum chamber containing the optical element. The gas may be added to the flow of another gas such as hydrogen or alternated with the introduction of hydrogen radicals.
1 . An EUV light source comprising:
a vacuum chamber;
a reflective optical element located within the vacuum chamber;
a measuring system for measuring an operating parameter of the EUV light source, wherein the operating parameter is a number of EUV pulses produced by the EUV light source since a predefined starting time;
a gas introduction system for adding a mitigation gas that mitigates contamination of the reflective optical element by chemical reactions in the vacuum chamber; and
a controller adapted to control, based at least in part on the operating parameter as measured, the gas introduction system to control continuous addition of the mitigation gas to the vacuum chamber by the gas introduction system.
2 . The EUV light source as in claim 1 wherein the controller controls the gas introduction system to control a concentration of the mitigation gas.
3 . The EUV light source as in claim 1 the controller controls the gas introduction system to control a flow rate of mitigation gas.
4 . The EUV light source as in claim 1 wherein the controller controls the gas introduction system to control a composition of the mitigation gas.
5 . A method comprising:
measuring an operating parameter of an EUV light source, the EUV light source comprising a vacuum chamber and a reflective optical element located within the vacuum chamber, wherein the operating parameter is a number of EUV pulses produced by the EUV light source since a predefined starting time; and
controlling, based at least in part on the operating parameter as measured, continuous addition to the vacuum chamber of a mitigation gas that mitigates contamination of the reflective optical element by chemical reaction.
6 . The method as in claim 5 wherein controlling addition of the mitigation gas comprises controlling a concentration of the mitigation gas.
7 . The method as in claim 5 wherein controlling addition of the mitigation gas comprises controlling a flow rate of mitigation gas.
8 . The method as in claim 5 wherein the step of controlling addition of the mitigation gas comprises controlling a composition of the mitigation gas.
9 . An EUV light source comprising:
a vacuum chamber;
a reflective optical element located within the vacuum chamber;
a measuring system for measuring an operating parameter of the EUV light source, wherein the operating parameter is a duration of operation of the EUV light source;
a gas introduction system for adding a mitigation gas that mitigates contamination of the reflective optical element by chemical reactions in the vacuum chamber; and
a controller adapted to control, based at least in part on the operating parameter as measured, the gas introduction system to control continuous addition of the mitigation gas to the vacuum chamber by the gas introduction system.
10 . The EUV light source as in claim 9 wherein the controller controls the gas introduction system to control a concentration of the mitigation gas.
11 . The EUV light source as in claim 9 wherein the controller controls the gas introduction system to control a flow rate of mitigation gas.
12 . The EUV light source as in claim 9 wherein the controller controls the gas introduction system to control a composition of the mitigation gas.
13 . A method comprising:
measuring an operating parameter of an EUV light source, the EUV light source comprising a vacuum chamber and a reflective optical element located within the vacuum chamber, wherein the operating parameter is a duration of operation of the EUV light source; and
controlling, based at least in part on the operating parameter as measured, continuous addition to the vacuum chamber of a mitigation gas that mitigates contamination of the reflective optical element by chemical reaction.
14 . The method as in claim 13 wherein controlling addition of the mitigation gas comprises controlling a concentration of the mitigation gas.
15 . The method as in claim 13 wherein controlling addition of the mitigation gas comprises controlling a flow rate of mitigation gas.
16 . The method as in claim 13 wherein the step of controlling addition of the mitigation gas comprises controlling a composition of the mitigation gas.