Imaging System

The imaging system addresses the challenge of chromatic aberration in broadband UV optics by using a refractive reflective lens group and optical path folding, achieving low distortion and stable magnification for UV imaging applications.

JP7770532B2Active Publication Date: 2025-11-14AAC OPTICS SOLUTIONS PTE LTD +1
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Patent Information

Application Number
JP2024501623
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2023-04-04
Publication Date
2025-11-14
Estimated Expiration
2043-04-04

AI Technical Summary

Technical Problem

Designing a high-performance microscope suitable for broadband UV applications is challenging due to the limited availability of chromatic aberration-correcting materials and the difficulty in correcting chromatic aberrations in UV broadband optics with wide zooms.

Method used

An imaging system comprising a refractive reflective lens group, a barrel lens group, and an optical path folding reflective assembly, utilizing refractive materials with different dispersions and optical path folding to correct chromatic aberrations, with a magnification ratio M=F1/F2, and a zoom range that maintains high-order chromatic aberration correction.

Benefits of technology

The imaging system achieves high performance in broadband UV imaging with low distortion, high telecentricity, and stable magnification across a wide wavelength range, suitable for applications like ultraviolet microscopes and photolithography systems.

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Abstract

The present invention relates to the technical field of microscope imaging, and particularly discloses an imaging system applicable to broadband ultraviolet wavelength band imaging. 【Solution means】It includes a catadioptric lens group, a lens barrel lens group, and an optical path folding reflection assembly. The catadioptric lens group includes a catadioptric assembly, a field lens assembly, and a focus assembly. The catadioptric assembly focuses the light from the object on the field lens assembly to correct chromatic aberration. The light with corrected chromatic aberration is imaged on the image plane through the focus assembly, the lens barrel lens group, and the optical path folding reflection assembly in sequence. The magnification of the imaging system is M, and M = F1 / F2 is satisfied, where F1 is the focal length of the catadioptric lens group and F2 is the focal length of the lens barrel lens group. Moreover, the lens barrel lens group has a zoom range without changing the higher-order chromatic aberration, and the optical path folding reflection assembly has an optical path distance change range adapted to the zoom range of the lens barrel lens group.
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Description

[Technical Field]

[0001] The present invention relates to the technical field of microscopic imaging, and in particular to an imaging system that is particularly suitable for imaging in the broadband ultraviolet wavelength range. [Background technology]

[0002] Ultraviolet detection microscopes have great application value in various fields such as physics, chemistry, materials science, and life science. In particular, in the semiconductor and optoelectronic industries, deep ultraviolet detection microscopes are very important detection devices. They can be used to detect photolithography patterns on silicon wafers (or photomasks) after exposure, development, etching, etc., and can quickly observe the overall effect of photolithography patterns on silicon wafers (or reticles). They can be used to measure the line width (CD) of photolithography patterns and detect defects, etc.

[0003] Designing a high-performance microscope suitable for broadband UV applications is challenging due to the limited availability of chromatic aberration-correcting materials in the UV wavelength range, and correcting chromatic aberrations in UV broadband optics is even more challenging with wide zooms.

[0004] Therefore, there is a need to provide a new imaging system suitable for imaging broadband ultraviolet wavelength ranges. Summary of the Invention [Problem to be solved by the invention]

[0005] In response to the above problems, it is an object of the present invention to provide an imaging system that is particularly adapted for imaging broadband ultraviolet wavelength bands. [Means for solving the problem]

[0006] In order to solve the above technical problems, an embodiment of the present invention provides an imaging system applicable to broadband ultraviolet wavelength band imaging, comprising: a refractive reflective lens group, a barrel lens group, and an optical path folding reflective assembly, wherein the refractive reflective lens group comprises a refractive reflective assembly, a field lens assembly, and a focus assembly, wherein the refractive reflective assembly focuses light from an object onto the field lens assembly to correct chromatic aberration, and the chromatically corrected light passes through the focus assembly, the barrel lens group, and the optical path folding reflective assembly in order to be imaged on an image plane, wherein the magnification of the imaging system is M, and satisfies a conditional formula M=F1 / F2, where F1 is the focal length of the refractive reflective lens group, F2 is the focal length of the barrel lens group, and the barrel lens group has a zoom range without changing high-order chromatic aberration, and the optical path folding reflective assembly has an optical path length change range adapted to the zoom range of the barrel lens group. the field lens assembly includes a plurality of lenses formed of refractive materials having at least two different types of dispersion, the plurality of lenses of the field lens assembly being arranged in order from the object side to the image side as a third lens, a fourth lens, and a fifth lens, the third lens being adhesively fixed to the object side of the fourth lens, the fifth lens being provided on the image side of the fourth lens and spaced apart from the fourth lens, the third lens having a flat object-side surface and a convex image-side surface, the fourth lens having a concave object-side surface and a convex image-side surface, and the fifth lens having a convex object-side surface and a concave image-side surface. The imaging system is characterized by:

[0007] Preferably, the imaging system is adapted for imaging light in the wavelength range of 250 to 450 nm.

[0008] Preferably, the imaging system has a distortion of less than 0.1%.

[0009] Preferably, the imaging system has a Strehl definition greater than 0.9.

[0010] Preferably, the imaging system has a magnification of 50-250.

[0011] Preferably, the imaging system has a magnification variation within the wavelength range of less than 0.1%.

[0012] Preferably, the imaging system has a very high telecentricity of less than 1 mrad.

[0013] Preferably, the refractive reflecting assembly includes a first lens having a first reflective coating layer on its image side surface and a second lens having a second reflective coating layer on its object side surface, the second lens having a window for receiving light from an object and an opening at the center of the first lens, the light received at the window is sequentially refracted by the second lens and the first lens to the first reflective coating layer and reflected by the first reflective coating layer, the light reflected by the first reflective coating layer is sequentially refracted by the first lens and the second lens to the second reflective coating layer and reflected by the second reflective coating layer, and the light reflected by the first reflective coating layer is focused to the field lens assembly after being refracted by the second lens.

[0014] Preferably, the field lens assembly is at least partially located within the aperture.

[0016] Preferably, the refractive materials of different dispersion include fused silica and calcium fluoride.

[0017] Preferably, the Third The lens is made of calcium fluoride It is a lens , The fourth lens and the fifth lens are Made of fused silica It is a lens.

[0019] Preferably, The barrel lens group includes a plurality of lenses from the object side to the image side, and the plurality of lenses of the barrel lens group are a sixth lens, a seventh lens, an eighth lens, and a ninth lens, respectively, and the sixth lens has a convex object-side surface and a concave image-side surface, the seventh lens has a flat object-side surface and a convex image-side surface, the eighth lens has a concave object-side surface and a flat image-side surface, and the ninth lens has a concave object-side surface and a convex image-side surface. [Effects of the Invention]

[0020] The beneficial effects of the present invention are as follows: The imaging system architecture can be designed to be particularly suitable for imaging broadband ultraviolet wavelength bands. [Brief explanation of the drawings]

[0021] In order to more clearly explain the technical solutions of the embodiments of the present invention, the following briefly introduces the drawings required for the embodiments. Obviously, the drawings described below are only some embodiments of the present invention, and those skilled in the art can further obtain other drawings based on these drawings without any creative work. [Figure 1] 1 is a structural principle diagram of an imaging system according to the present invention; [Figure 2] FIG. 2 is a schematic diagram showing the configuration of a refractive / reflective lens group in the imaging system shown in FIG. [Figure 3] 1. FIG. 4 is a schematic diagram showing the configuration of another embodiment of the refractive / reflective lens group in the imaging system shown in FIG. [Figure 4] 2 is a schematic diagram showing the configuration of a lens barrel group in the imaging system shown in FIG. 1. DETAILED DESCRIPTION OF THE INVENTION

[0022] In order to make the objectives, solutions, and advantages of the present invention clearer, the following detailed description of each embodiment of the present invention will be given with reference to the accompanying drawings. However, it will be understood by those skilled in the art that many technical details are described in each embodiment of the present invention to better understand the present invention. However, the technical solution to be protected by the present invention can be realized without these technical details and various changes and modifications based on the following embodiments.

[0023] The imaging system of the present invention is particularly suitable for ultraviolet imaging applications such as ultraviolet microscope objectives, collectors of surface scattered ultraviolet light in wafer detection equipment, and mask projection optical systems in ultraviolet photolithography systems.

[0024] Referring to FIG. 1, the imaging system according to the present invention includes a refractive reflective lens group 1, a barrel lens group 3, and an optical path folding reflector assembly 5, and light from an object passes through the refractive reflective lens group 1, the barrel lens group 3, and the optical path folding reflector assembly 5 in this order to be imaged onto an image plane 9.

[0025] In FIG. 1, the direction of the arrow indicates the direction in which light travels from the object side to the image side.

[0026] As shown in Figure 1, between the refractive reflective lens group 1 and the barrel lens group 3, and between the optical path folding reflection assembly 5 and the image plane 9, there are provided reflective elements 8 each having a reflective surface, where light emitted from the refractive reflective lens group 1 is reflected by the reflective surface of the reflective element 8 to the barrel lens group 3, and light emitted from the optical path folding reflection assembly 5 is reflected by the reflective surface of another reflective element 8 to the image plane 9 and formed into an image.

[0027] The reflecting element 8 may be a prism (for example, a triangular prism shown in FIG. 1), a plane mirror, or the like.

[0028] Referring to FIG. 2 , the refractive reflective lens group 1 includes a refractive reflective assembly 11, a field lens assembly 13, and a focusing assembly 15. The refractive reflective assembly 11 focuses light from an object onto the field lens assembly 13 to correct chromatic aberration. The chromatically corrected light passes through the focusing assembly 15, the barrel lens group 3, and the optical path folding reflective assembly 5 to be imaged onto an image plane 9. The magnification of the imaging system is M, and M=F1 / F2 is satisfied, where F1 is the focal length of the refractive reflective lens group 1, F2 is the focal length of the barrel lens group 3, and the barrel lens group 3 has a zoom range without changing the high-order chromatic aberration. The optical path folding reflective assembly 5 has an optical path length change range that accommodates the zoom range of the barrel lens group 3.

[0029] In a specific embodiment, the refractive-reflective lens group 1 has a focal length of 23.35 mm and an optical length of 345 mm.

[0030] The refractive reflecting assembly 11 includes a first lens 111 having a first reflective coating layer 112 on its image side and a second lens 113 having a second reflective coating layer 114 on its object side. The second lens 113 has a window 115 for receiving light from an object and has an opening 117 at the center of the first lens 111. The light received by the window 115 is sequentially refracted by the second lens 113 and the first lens 111 to the first reflective coating layer 112 and reflected by the first reflective coating layer 112. The light reflected by the first reflective coating layer 112 is sequentially refracted by the first lens 111 and the second lens 113 to the second reflective coating layer 114 and reflected by the second reflective coating layer 114. The light reflected by the first reflective coating layer 112 is refracted by the second lens 113 and then focused on the field lens assembly 13.

[0031] It should be noted that the optical aperture of the window 115 does not need to be limited by the opening 117, but may simply be limited by the second reflective coating layer 114. Specifically, the window 115 is formed by exposing an area on the object-side surface of the transparent lens where the second reflective coating layer 114 is not applied.

[0032] The first reflective coating layer 112 and the second reflective coating layer 114 may be a magnesium fluoride coating layer or an aluminum coating layer. Optionally, the first reflective coating layer 112 and the second reflective coating layer 114 may be polarization protected to enhance reflectivity.

[0033] In a specific embodiment, the diameter of the window 115 is 1 mm, the diameter of the aperture 117 is 48 mm, and the exit angle range is ±21 mrad.

[0034] At least a portion of field lens assembly 13 is located within aperture 117. This allows the diameter of aperture 117 to be made sufficiently small, which is advantageous in focusing more light into field lens assembly 13.

[0035] The field lens assembly 13 includes a plurality of lenses formed of refractive materials having at least two different dispersions, and the plurality of lenses are arranged in order from the object side to the image side.

[0036] In this embodiment, the refractive materials of different dispersion include fused silica and calcium fluoride.

[0037] As shown in FIGS. 2 and 3, the lenses are divided into a third lens 131 made of calcium fluoride, and a fourth lens 133 and a fifth lens 135 made of fused silica.

[0038] As shown in FIG. 2, the third lens 131 is adhesively fixed to the object side 133 of the fourth lens, the fifth lens 135 is provided on the image side of the fourth lens 133 and is installed at a distance from the fourth lens 133, and the adhesive surfaces of the third lens 131 and the fourth lens 133 have the same radius of curvature.

[0039] The third lens 131 has a flat object side surface and a convex image side surface, the fourth lens 133 has a concave object side surface and a convex image side surface, and the fifth lens 135 has a convex object side surface and a concave image side surface. Note that both the object side surface and the image side surface of the fifth lens 135 are slightly curved.

[0040] Referring to FIG. 3, the fifth lens 135 is bonded to the object side of the third lens 131, and the fourth lens 133 is bonded to the image side of the third lens 131, where the bonding surfaces of the third lens 131 and the fourth lens 133 have the same radius of curvature, and the bonding surfaces of the fifth lens 135 and the third lens 131 have the same radius of curvature.

[0041] The fifth lens 135 has flat object-side and image-side surfaces, the third lens 131 has a flat object-side surface and a convex image-side surface, and the fourth lens 133 has a concave object-side surface and a convex image-side surface.

[0042] It should be noted that the field lens assembly 13 shown in FIG. 3 is more suitable for wavefront correction than the field lens assembly 13 shown in FIG.

[0043] 2 and 3, the focus assembly 15 includes, from the object side to the image side, a plurality of lenses, which are, in order from the object side to the image side, an a lens 151, a b lens 152, a c lens 153, a d lens 154, an e lens 155, an f lens 156, and a g lens 157. Here, the a lens 151 has a concave object side surface and a concave image side surface, the b lens 152 has a flat object side surface and a convex image side surface, the c lens 153 has a convex object side surface and a convex image side surface, the d lens 154 has a convex object side surface and a concave image side surface, the e lens 155 has a concave object side surface and a convex image side surface, the f lens 156 has a convex object side surface and a flat image side surface, and the g lens 157 has a concave object side surface and a concave image side surface.

[0044] The barrel lens group 3 has a plurality of lenses arranged from the object side to the image side, and the total focal length of the barrel lens group 3 can be adjusted by adjusting the spacing between the lenses.

[0045] In order for the barrel lens group 3 to be able to zoom without changing the higher-order chromatic aberration, the focal length may be adjusted by adjusting the spacing between at least two lenses, or the focal length may be adjusted by replacing the entire barrel lens group 3 with one having a different spacing between at least two lenses.

[0046] As shown in Fig. 4, the multiple lenses are an A lens 31, a B lens 33, a C lens 35, and a D lens 37. Here, the A lens 31 has a convex object side surface and a concave image side surface, the B lens 33 has a flat object side surface and a convex image side surface, the C lens 35 has a concave object side surface and a flat image side surface, and the D lens 37 has a concave object side surface and a convex image side surface.

[0047] As shown in FIG. 1, the light path folding reflection assembly 5 includes a plurality of light reflecting elements, which are respectively an A light reflecting element 51, a B light reflecting element 53, a C light reflecting element 55, a D light reflecting element 57, an E light reflecting element 58, and an F light reflecting element 59, wherein the A light reflecting element 51 and the B light reflecting element 53 constitute a first set of light reflecting elements, and the C light reflecting element 55, the D light reflecting element 57, the E light reflecting element 58, and the F light reflecting element 59 constitute a second set of light reflecting elements, and the first set of light reflecting elements and the second light reflecting elements can move back and forth or against each other to realize a change in the light path distance.

[0048] As the light reflecting element, a prism (for example, a triangular prism shown in FIG. 1), a plane mirror, or the like can be used.

[0049] The imaging system is adapted to image light in the wavelength range of 250 to 450 nm, and the autofocus wavelength of the imaging system is 470 nm.

[0050] The imaging system has a distortion of less than 0.1%.

[0051] The imaging system has a Strehl ratio greater than 0.9. Note that the general trend for imaging systems is to have a low Strehl ratio at lower wavelengths, but to exclude auto-wavelengths, since the diffraction limit is lower at lower wavelengths.

[0052] The magnification of the imaging system is 50 to 250. For example, if the focal length of the barrel lens group 3 is 1168 mm, the magnification of the imaging system is 50x, and if the focal length of the barrel lens group 3 is 5838 mm, the magnification of the imaging system is 250x.

[0053] The magnification variation within the wavelength range of the imaging system is less than 0.1%.

[0054] The imaging system has a very high telecentricity of less than 1 mrad.

[0055] As will be understood by those skilled in the art, the above-described embodiments are specific embodiments for realizing the present invention, and in actual applications, various changes in form and details are possible without departing from the spirit and scope of the present invention.

Claims

1. 1. An imaging system adapted for broadband ultraviolet wavelength band imaging, comprising: a refractive reflective lens group; a barrel lens group; and a folding reflective assembly; the refractive reflective lens group includes a refractive reflective assembly, a field lens assembly, and a focus assembly, the refractive reflective assembly focuses light from an object onto the field lens assembly to correct chromatic aberration, and the chromatically corrected light passes through the focus assembly, the barrel lens group, and the optical path folding reflective assembly in order to be imaged on an image plane; a magnification ratio of the imaging system is M, and satisfies a condition M=F1 / F2, where F1 is a focal length of the refractive reflecting lens group, F2 is a focal length of the barrel lens group, the barrel lens group has a zoom range without changing high-order chromatic aberration, and the optical path folding reflecting assembly has an optical path length change range that accommodates the zoom range of the barrel lens group; the field lens assembly includes a plurality of lenses formed of refractive materials having at least two different types of dispersion, the plurality of lenses of the field lens assembly being arranged in order from the object side to the image side in the form of a third lens, a fourth lens, and a fifth lens, the third lens being adhesively fixed to the object side of the fourth lens, and the fifth lens being provided on the image side of the fourth lens and spaced apart from the fourth lens; the third lens has a flat object-side surface and a convex image-side surface, the fourth lens has a concave object-side surface and a convex image-side surface, 11. An imaging system, wherein the fifth lens has a convex surface on the object side and a concave surface on the image side.

2. 2. The imaging system according to claim 1, wherein the imaging system is adapted to image light in the wavelength range of 250 to 450 nm.

3. 10. The imaging system of claim 1, wherein the imaging system has a distortion of less than 0.1%.

4. The imaging system of claim 1 , wherein the imaging system has a Strehl ratio greater than 0.

9.

5. 2. The imaging system of claim 1, wherein the imaging system has a magnification of 50 to 250.

6. 6. The imaging system of claim 5, wherein the imaging system has a magnification change within a wavelength range of less than 0.1%.

7. 10. The imaging system of claim 1, wherein said imaging system has an extremely high telecentricity of less than 1 mrad.

8. 2. The imaging system of claim 1, wherein the refractive-reflective assembly includes a first lens having a first reflective coating layer on its image-side surface and a second lens having a second reflective coating layer on its object-side surface, the second lens having a window for receiving light from an object and an opening at the center of the first lens, the light received by the window sequentially passing through the second lens and the first lens, being refracted by the first reflective coating layer and reflected by the first reflective coating layer, the light reflected by the first reflective coating layer sequentially passing through the first lens and the second lens, being refracted by the second reflective coating layer and reflected by the second reflective coating layer, and the light reflected by the first reflective coating layer being refracted by the second lens before being focused onto the field lens assembly.

9. 9. The imaging system of claim 8, wherein the field lens assembly is at least partially located within the aperture.

10. 2. The imaging system of claim 1, wherein the refractive materials of different dispersion include fused silica and calcium fluoride.

11. 11. The imaging system of claim 10, wherein the third lens is a lens made of calcium fluoride, and the fourth lens and the fifth lens are lenses made of fused silica.

12. The lens barrel group includes a plurality of lenses arranged from the object side to the image side, and the lenses of the lens barrel group are a sixth lens, a seventh lens, an eighth lens, and a ninth lens, respectively; the sixth lens has a convex object-side surface and a concave image-side surface, the seventh lens has a flat object-side surface and a convex image-side surface, the eighth lens has a concave object-side surface and a flat image-side surface, 2. The imaging system of claim 1, wherein the ninth lens has a concave object-side surface and a convex image-side surface.

Citation Information

Patent Citations

  • Ultra-wideband UV microscope imaging system with wide-range zoom function

    JP2001517806A

  • Imaging optical lens

    JP2021516783A