US2019146122A1PendingUtilityA1

Optical imaging with reduced immersion liquid evaporation effects

Assignee: ZEISS CARL SMT GMBHPriority: May 4, 2009Filed: Oct 15, 2018Published: May 16, 2019
Est. expiryMay 4, 2029(~2.8 yrs left)· nominal 20-yr term from priority
Inventors:Stephan Six
G03F 7/70883G02B 1/18G03F 7/7015G02B 27/0006G03F 7/70341G03F 7/70858
62
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Claims

Abstract

The present disclosure relates to an optical arrangement for use in an optical imaging process. The optical arrangement includes an optical element, an immersion zone and a liquid repelling device. During the optical imaging process, the immersion zone is located adjacent to the optical element and is filled with an immersion liquid. The optical element has a first surface region and a second surface region. During the optical imaging process, the first surface region is wetted by the immersion liquid. At least temporarily during the optical imaging process, the liquid repelling device generates an electrical field in the region of the second surface. The electrical field being is adapted to cause a repellent force on parts of the immersion liquid which are responsive to the electrical field and inadvertently contact the second surface region. The repellent force has a direction to drive away the parts of the immersion liquid from the second surface region.

Claims

exact text as granted — not AI-modified
1 .- 23 . (canceled) 
     
     
         24 . An optical arrangement, comprising:
 an optical element having first and second surface regions; and   a liquid repelling device comprising an electrically conductive element adjacent the optical element,   wherein:
 the electrically conductive element is mechanically connected to the optical element; and 
 during an optical imaging process performed using the optical arrangement:
 an immersion zone is adjacent to the optical element and contains an immersion liquid; and 
 the first surface region is wetted with the immersion liquid. 
 
   
     
     
         25 . The optical arrangement of  claim 24 , wherein the electrically conductive element directly contacts the optical element. 
     
     
         26 . The optical arrangement of  claim 24 , further comprising a layer on the electrically conductive element, wherein the layer is located between the electrically conductive element and the optical element. 
     
     
         27 . The optical arrangement of  claim 26 , wherein the layer comprises a member selected from the group consisting of an electrically insulating layer, a hydrophilic layer and a hydrophobic layer. 
     
     
         28 . The optical arrangement of  claim 24 , further comprising an electrically insulating layer between the electrically conductive element and the optical element. 
     
     
         29 . The optical arrangement of  claim 24 , further comprising an electrically insulating element having the electrically conductive element embedded therein. 
     
     
         30 . The optical arrangement of  claim 24 , wherein, during the optical imaging process performed using the optical arrangement:
 at least temporarily, the liquid repelling device generates an electrical field in the region of the second surface; and   the electrical field is generated via the electrically conductive element.   
     
     
         31 . The optical arrangement of  claim 30 , wherein the electrical field is an electrostatic field. 
     
     
         32 . The optical arrangement of  claim 30 , wherein the electrical field is configured to cause a repellent force to drive away a portion of the immersion liquid in contact with the second surface region. 
     
     
         33 . The optical arrangement of  claim 32 , wherein:
 the electrically conductive element comprises a first electrically conductive element located in the region of the first surface region; and   during the optical imaging process performed using the optical arrangement:
 the electrical field comprises a first electrical field generated via the first electrically conductive element; and 
 the first electrical field is configured so that the repellent force comprises a first repellent force component acting as an attractive force between the portion of the immersion liquid in contact with the second surface region and the first electrically conductive element. 
   
     
     
         34 . The optical arrangement of  claim 33 , wherein:
 the first electrically conductive element has a surface region;   during the optical imaging process performed using the optical arrangement, the surface region of the first electrically conductive element faces the immersion fluid;   a cover element covers the surface region of the electrically conductive element; and   the cover element is electrically insulating and/or hydrophilic.   
     
     
         35 . The optical arrangement of  claim 34 , wherein the cover element comprises at least one material selected from a material group consisting of a silicon dioxide, aluminum oxide, hafnium oxide and tantalum pentoxide. 
     
     
         36 . The optical arrangement of  claim 32 , wherein:
 the liquid repelling device comprises a second electrically conductive element located in the region of the second surface region of the optical element; and   during the optical imaging process performed using the optical arrangement:
 the electrical field comprises a second electrical field generated via the second electrically conductive element; and 
 the second electrical field is configured so that the repellent force comprises a second repellent force component acting as a repulsive force between the portion of the immersion liquid in contact with the second surface region and the electrically conductive element. 
   
     
     
         37 . The optical arrangement of  claim 36 , wherein:
 the second electrically conductive element has a surface region;   during the optical imaging process performed using the optical arrangement, the surface region of the second electrically conductive element faces the immersion fluid;   a cover element covers the surface region of the electrically conductive element; and   the cover element is electrically insulating and/or hydrophobic.   
     
     
         38 . The optical arrangement of  claim 30 , wherein:
 the liquid repelling device comprises an electrical field generating device;   during the optical imaging process performed using the optical arrangement:
 the electrical field generating device at least temporarily generates a further electrical field; 
 to at least enhance a responsiveness of the immersion liquid to the electrical field generated via the liquid repelling device, the further electrical field provides a first effect and/or a second effect; 
 the first effect is an electrical polarization of at least a portion of the immersion liquid in contact with the second surface region of the optical element; and 
 the second effect is an electrostatic charge of at least the portion of the immersion liquid in contact with the second surface region of the optical element. 
   
     
     
         39 . The optical arrangement of  claim 24 , wherein the electrically conductive element comprises at least one material selected from a material group consisting of chromium, aluminum, hafnium, titanium and nickel. 
     
     
         40 . The optical arrangement of  claim 24 , further comprising a layer on the electrically conductive element, wherein the layer comprises at least one material selected from the material group consisting of a silicon dioxide, aluminum oxide, hafnium oxide and tantalum pentoxide. 
     
     
         41 . An optical imaging device, comprising:
 an illumination device configured to illuminate an object comprising a pattern,   an optical projection device configured to project the illuminated pattern onto a substrate comprising an optical element group,   wherein the optical projection device comprises an optical arrangement according to  claim 24 .   
     
     
         42 . An optical element, comprising:
 an optical element body having first and second surface regions; and   an electrically conductive element mechanically connected to the optical element in a region of the first surface region and/or the second surface region,   wherein, during an optical imaging process performed using the optical element, the first surface region is wetted with an immersion liquid responsive to an electrical field.   
     
     
         43 . The optical element of  claim 42 , wherein:
 the electrically conductive element comprises a second electrically conductive element located in the region of the second surface region; and   the electrically conductive element is configured to participate in generating the electrical field during an optical imaging process performed using the optical element;   the electrical field comprises a second electrical field generated via the second electrically conductive element; and   the second electrical field is configured so that the repellent force comprises a second repellent force component that acts as a repulsive force between the portion of the immersion liquid in contact with the second surface region and the electrically conductive element.   
     
     
         44 . The optical element of  claim 43 , wherein:
 the second electrically conductive element has a surface region;   during an optical imaging process performed using the optical element, the surface region of the second electrically conductive element faces the immersion fluid;   a cover element covers the surface region of the second electrically conductive element;   the cover element is electrically insulating and/or hydrophobic.   
     
     
         45 . A method, comprising:
 intentionally wetting a first surface of an optical element with an immersion liquid;   inadvertently wetting a second surface of the optical element with a portion of the immersion liquid; and   using an electrically conductive element to generate a force that repels the portion of the immersion liquid which is inadvertently in contact with the second surface of the optical element,   wherein the electrically conductive element is mechanically connected to the optical element.

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