ULTRA-HIGH-VACUUM CELL WITH INTEGRATED META-OPTICS
20260003103 ยท 2026-01-01
Assignee
Inventors
Cpc classification
G02B1/002
PHYSICS
International classification
G02B1/00
PHYSICS
Abstract
Metamaterial optics are integrated with vacuum-boundary walls of ultra-high-vacuum (UHV) cells to manipulate light in a manner analogous to various bulk optical elements including lenses, mirrors, beam splitters, polarizers, waveplate, wave guides, frequency modulators, and amplitude modulators. For example, UHV cells can have metasurface lenses formed on interior and/or exterior surfaces on one or more of their vacuum-boundary walls. Each metasurface lens can include a plurality of mesas with the same height and various cross-sectional dimensions. The uses of metasurface lenses allows through-going laser beams to be expanded, collimated or focused without using bulky refractive optics. Each metasurface lens can be formed on a cell wall using photolithographic or other techniques.
Claims
1. An ultra-high vacuum (UHV) cell system comprising: a plurality of walls separating a UHV interior from a higher pressure exterior, each of the walls having an interior-facing surface facing the UHV interior and an exterior-facing surface, the UHV interior having a pressure less than 10.sup.9 Torr; a first optical element for manipulating first light entering the UHV cell through a first wall of the plurality of walls formed on an interior-facing surface or an exterior-facing surface of the first wall and comprising at least one of subwavelength periodic structures or subwavelength refractive index changes with respect to a wavelength of the first light, with at least a portion of the first optical element being integral with or in contact with the interior-facing surface or exterior-facing surface on which the first optical element is formed; and a second optical element for manipulating second light exiting the UHV cell through a second wall of the plurality of walls formed on an interior-facing surface or an exterior-facing surface of the second wall and comprising at least one of subwavelength periodic structures or subwavelength refractive index changes with respect to a wavelength of the second light, with at least a portion of the second optical element being integral with or in contact with the interior-facing surface or exterior-facing surface on which the second optical element is formed.
2. The UHV cell system of claim 1, wherein the first optical element includes a plurality of mesas.
3. The UHV cell system of claim 2, wherein the mesas have substantially identical heights, an average distance between mesas and their respective nearest neighbor mesas being less than one micron.
4. The UHV cell system of claim 1, wherein the first optical element is formed on an interior-facing surface of the first wall.
5. The UHV cell system of claim 4, wherein the second optical element is formed on the interior-facing surface of the first wall.
6. The UHV cell system of claim 4, wherein the second optical element is formed on an exterior-facing surface of the first wall.
7. The UHV cell system of claim 1, wherein the first wall and the second wall are parallel to each other.
8. The UHV cell system of claim 7, wherein the first optical element is formed on an interior-facing surface of the first wall and the second optical element is formed on an exterior-facing surface of the second wall.
9. The UHV cell system of claim 1, wherein the first wall is an atom chip.
10. The UHV cell system of claim 1, wherein the first optical element is formed on an exterior-facing surface of the first wall.
11. An ultra-high vacuum (UHV) cell formation process comprising: forming a plurality of walls configured to separate a UHV interior from a higher pressure exterior, each of the walls having an interior-facing surface facing the UHV interior and an exterior-facing surface, the UHV interior having a pressure less than 10.sup.9 Torr; forming a first optical element for manipulating first light entering the UHV cell through a first wall of the plurality of walls formed on an interior-facing surface or an exterior-facing surface of the first wall and comprising at least one of subwavelength periodic structures or subwavelength refractive index changes with respect to a wavelength of the first light, with at least a portion of the first optical element being integral with or in contact with the interior-facing surface or exterior-facing surface on which the first optical element is formed; and forming a second optical element for manipulating second light exiting the UHV cell through a second wall of the plurality of walls formed on an interior-facing surface or an exterior-facing surface of the second wall and comprising at least one of subwavelength periodic structures or subwavelength refractive index changes with respect to a wavelength of the second light, with at least a portion of the second optical element being integral with or in contact with the interior-facing surface or exterior-facing surface on which the second optical element is formed.
12. The UHV cell formation process of claim 11, wherein forming the first optical element comprises forming a plurality of mesas, each mesa of the plurality of mesas comprising a length along a first axis, a width along a second axis that is perpendicular to the first axis, and a height along a third axis that is perpendicular to each of the first axis and the second axis.
13. The UHV cell formation process of claim 11, wherein the interior-facing surface or exterior-facing surface on which the second optical element is formed is substantially perpendicular to or substantially parallel with the interior-facing surface or the exterior-facing surface on which the first optical element is formed.
14. The UHV cell formation process of claim 11, wherein the interior-facing surface or the exterior-facing surface on which the first optical element is formed is a curved surface.
15. The UHV cell formation process of claim 11, further comprising forming a metamaterial optical element within the first wall.
16. The UHV cell formation process of claim 15, wherein the metamaterial optical element comprises a plurality of features, wherein each feature of the plurality of features has a respective index of refraction that is different from an index of refraction of a portion of the first wall.
17. The UHV cell formation process of claim 11, wherein the first optical element comprises a first layer of material associated with a first refractive index formed on the interior-facing surface or the exterior-facing surface and a second layer of material associated with a second refractive index formed on the first layer of material, where the first refractive index is different from the second refractive index.
18. An ultra-high vacuum (UHV) cell light-manipulation process comprising: establishing a UHV interior separated from a higher pressure exterior by a plurality of walls, each of the walls having an interior-facing surface facing the UHV interior and an exterior-facing surface, the UHV interior having a pressure less than 10.sup.9 Torr; manipulating, using a first optical element, first light entering the UHV cell through a first wall of the plurality of walls formed on an interior-facing surface or an exterior-facing surface of the first wall, the first optical element comprising at least one of subwavelength periodic structures or subwavelength refractive index changes with respect to a wavelength of the first light, with at least a portion of the first optical element being integral with or in contact with the interior-facing surface or exterior-facing surface on which the first optical element is formed; and manipulating, using a second optical element for manipulating second light exiting the UHV cell through a second wall of the plurality of walls formed on an interior-facing surface or an exterior-facing surface of the second wall, the second optical element comprising at least one of subwavelength periodic structures or subwavelength refractive index changes with respect to a wavelength of the second light, with at least a portion of the second optical element being integral with or in contact with the interior-facing surface or exterior-facing surface on which the second optical element is formed.
19. The UHV cell light-manipulation process of claim 18, wherein the first optical element is configured to focus, expand, collimate, change a direction of propagation, or modify a polarization associated with at least a portion of the first light.
20. The UHV cell light-manipulation process of claim 18, wherein the first optical element transmits infrared light.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0005]
[0006]
[0007]
[0008]
[0009]
[0010]
[0011]
[0012]
DETAILED DESCRIPTION
[0013] The present invention provides a UHV cell with one or more metamaterial optics elements (e.g., lenses) formed on and/or in the cell walls, thus reducing or eliminating the use of bulkier refractive lenses and enabling smaller and more portable ultracold matter systems. For example, a UHV cell 100, shown in
[0014]
[0015] The image used to represent metasurface lens 106 was derived from
[0016] Atom chip 118 is used to generate and control magnetic fields within UHV cell 100. Metasurface lens 108 can be formed using a pulsed pico-second or femto-second laser to define its mesas by removing material between the mesas. Atom chip 118 is based on a silicon substrate that is transparent to infrared light. Accordingly, metasurface lens 108 is used for optical access by a near infrared (e.g., 1040 nm) laser.
[0017] An ultracold atom system 200 is shown in
[0018] In cell 100, metasurface lenses are formed on the interior surfaces of an assembled UHV cell. In other embodiments, the lenses are formed before cell walls are bonded to each other. Alternatively, metasurface lenses can be formed on exterior surfaces of walls. In the case of Cell 300,
[0019] A metasurface lens formation process 500 is flow charted in
[0020] At 504, light is applied to the unmasked areas of photoresist. In the case where the photoresist is positive, the light degrades the exposed photoresist; in the case where the photoresist is negative, the light strengthens (e.g., polymerizes or cross-links) the exposed photoresist. At 505, developer (solvent) is applied to dissolve away the weakened (in the case of the positive photoresist) or the non-strengthened (negative photoresist) regions of the photoresist, thus exposing a negative pattern of the metasurface material. At 506, the exposed negative pattern of metasurface material is etched away so as to expose a negative pattern of glass or other bulk material of the cell wall. At 507, remaining photoresist is removed, uncovering a final positive pattern of metamaterial mesas (aka, pillars). In some embodiments. In a case where a metasurface lens is formed on an interior surface of a cell wall, bonding of at least one cell wall may be required to complete the cell at 508.
[0021] Process 500 is basically a classical lithographic procedure. The invention provides for alternatives including various types of nanoimprint lithography, e.g., thermoplastic nanoimprint lithography, photo nanoimprint lithography, and resist-free direct thermal nanoimprint lithography. Other processes include direct laser etching.
[0022] Since each vacuum-boundary wall has an exterior-facing surface and an interior-facing surface, metasurface lens can be arranged in series to accomplish more complex transformations than can be accomplished by a single metasurface optical element. More complex functions can be achieved by adding a third optical element in the form of an in-wall metamaterial lens as shown in
[0023] As shown in
[0024] As shown in
[0025] The contents of cell 702 respond to the absorption of the entering light by emitting fluorescence 722 shortly after. The fluorescence is omnidirectional so some passes directly through wall 708, metasurface lens to a fluorescence photodetector 726. However, some fluorescence begins exiting in the opposite direction. This fluorescence is retro-reflected by metasurface mirror 726 so that the reflected fluorescence exits through wall 708 and metasurface lens 724 to reach fluorescence photodetector 726 (which counts incident fluorescence photons).
[0026] A light manipulation process 800, flow charted in
[0027] In an example, a metasurface lens is coupled with volume holographic gratings written into the same or nearby bulk transmissive structures. The metamaterial can be formed near the surface or within the bulk of another material through sub wavelength features formed through optical damage/selective refractive index changes similar to holography. The metamaterial can be formed into or onto the surface of the substrate material utilizing focused lasers to either thermally or through optical processes chemically excite localized reactions effectively forming nanoscale refractive index structures or changes onto or into the surface using photochemical growth or etching, an electrophoretic like localized high potential driven ion migration, or a local forced thermal diffusion on a subwavelength scale.
[0028] In an embodiment, the metamaterial is formed into or onto the surface of the substrate (cell wall) material utilizing focused lasers to either thermally or through optical processes chemically excite localized reactions effectively forming nanoscale refractive index structures or changes onto or into the surface. Formation can include photochemical growth or etching, an electrophoretic like localized high potential driven ion migration, or a local forced thermal diffusion on a subwavelength scale.
[0029] In an embodiment, metamaterial is used with a nanotextured/nanostructured surface over a clear aperture of a beam to improve reflection and reduce a tendency for alkali metals to sorb onto the surface of the optical face thereby degrading optical performance. In an embodiment, metasurface patterning forms or is part of a diffractive element. In an embodiment, a metasurface pattern is subsequently layered or iterated such as by then depositing/flowing a layer of low refractive index material to cover, followed by high refractive index thin film then iterating the patterning process. In an embodiment, a thin film metasurface material is selectively reacted such as with oxygen, nitrogen, etc., after patterning to change its optical properties, such as changing its bulk refractive index or adding an effective stepped or gradient refractive index.
[0030] In an embodiment, a metasurface lens is utilized as a reflective lens off of one or multiple metalized, high-reflectivity coated, or other reflective surfaces. For example, the lens can be on internally mounted turning mirrors to turn them into lenses as well without having to polish millimeter scale or smaller lenses. In an embodiment, one or a series of metasurface lens or other optical components are suspended within or outside of the vacuum chamber to enable free-space like beam manipulation with minimal consumed volume and mass of optics.
[0031] Herein, an atom chip is a microfabricated, integrated device in which electric, magnetic and optical fields can confine, control, manipulate and/or interrogate cold atoms. The use of an atom chip as a UHV cell wall is covered in U.S. Pat. No. 7,126,112 by Dana Zachary Anderson and Jacob G. J. Reichel entitled Cold Atom System with Atom Chip Wall. In the case of an atom chip wall, the atom chip functions as a feedthrough as features on the interior-facing surface of an atom chip are couple by vias to contacts on the exterior facing surface of the atom chip.
[0032] Herein, ultra-high vacuum and UHV refer to a pressure below 10.sup.9 Torr. Ultracold refers to temperatures below one microkelvin. A vacuum-boundary wall has an interior facing surface adjacent a confined vacuum and an exterior facing surface facing a higher ambient pressure.
[0033] Metamaterials are composed of periodic subwavelength metallic/dielectric structures that resonantly couple to the electric and magnetic fields of the incident electromagnetic waves, exhibiting unprecedented properties which are most typical within the context of the electromagnetic domain. Thus, a metamaterial optic (aka, meta-optic) is a structure that uses constructive and destructive interference to modify or manipulate light. A metasurface is a metamaterial structure for in or on a surface. A metasurface lens is a metasurface that mimics and/or extends the capabilities of refractive lenses.
[0034] Herein, the average minimum inter-feature separation is determined as follows. For each high index of refraction feature, determine the minimum separation between that feature and its nearest neighbor among the remaining high index of refraction features. Then, average all the minimum separations across all of the high index of refraction features of the optical element under consideration.
[0035] Herein, art labelled prior art, if any, is admitted prior art; art not labelled prior art, if any, is not admitted prior art. The illustrated embodiments, variations thereupon and modifications thereto are provided for by the present invention, the scope of which is defined by the accompanying claims.