IP Library Granted Patent US 10,718,987
Granted Patent B2
US 10,718,987 · App. 15/765,946 · Granted Jul 21, 2020

Optical device

Inventors: Peiman Hosseini (Bicester, GB); Harish Bhaskaran (Oxford, GB); Ben Broughton (Oxford, GB)
Assignee: OXFORD UNIVERSITY INNOVATION LIMITED
G02F1/137G02F1/133528G02F1/19G02F1/0147G02F2203/34
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Quick Facts
Patent No.
US 10,718,987
App. No.
15/765,946
Granted
Jul 21, 2020
Kind
B2
Abstract

An optical device comprising a stack of the following layers: a capping layer ( 16 ) having a high refractive index for guiding incident light; a layer of light absorber material ( 10 ), preferably a phase-changing material; and a reflective layer ( 12 ), wherein the refractive index of the capping layer is at least 1.6.

Claims (70)

1. An optical device comprising a stack of layers including:

a capping layer;

a layer of light absorber material;

a reflective layer; and

a spacer layer between the reflective layer and the layer of light absorber material, wherein:

the refractive index of the capping layer is at least 1.6;

the light absorber material is a phase-change material having a complex refractive index that is settable to at least two values which confer different optical properties to the device;

one or more electrodes are provided to enable the refractive index of the phase change material to be altered by application of a voltage;

the spacer layer comprises a plurality of spacer layer sub-layers, at least two of the spacer layer sub-layers having different refractive indices relative to each other; and

no phase-change material having a complex refractive index that is settable to at least two values which confer different optical properties to the device is present between the spacer layer and the reflective layer.

2. The device of claim 1 , wherein the capping layer comprises at least one of TiO 2 , ZnO, diamond, SiO 2 , Si 3 N 4 , and TaO.

3. The device of claim 1 , further comprising a spacer layer between the capping layer and the reflective layer.

4. The device of claim 1 , wherein the thickness of the light absorber layer is at least 10 nm.

5. The device of claim 1 , wherein the capping layer comprises a plurality of capping layer sub-layers, at least two of the capping layer sub-layers having different refractive indices relative to each other, at least one of the capping layer sub-layers having the refractive index of at least 1.6.

6. The device of claim 1 , wherein the light absorber material comprises a compound or alloy of a combination of elements selected from the following list of combinations: GeSbTe, VO x , NbO x , GeTe, GeSb, GaSb, AgInSbTe, InSb, InSbTe, InSe, SbTe, TeGeSbS, AgSbSe, SbSe, GeSbMnSn, AgSbTe, AuSbTe, and AlSb.

7. The device of claim 1 , further comprising a layer of passive light absorber material, wherein the layer of passive light absorber material is not switchable between different states.

8. The device of claim 7 , wherein:

the capping layer comprises a plurality of capping layer sub-layers, at least two of the capping layer sub-layers having different refractive indices relative to each other, at least one of the capping layer sub-layers having the refractive index of at least 1.6, and the layer of passive light absorber material is provided within the capping layer, sandwiched between two of the capping layer sub-layers, or the layer of passive light absorber material is provided directly adjacent to the capping layer.

9. The device of claim 7 , wherein:

the layer of passive light absorber material is provided within the spacer layer, sandwiched between two of the spacer layer sub-layers, or the layer of passive light absorber material is provided directly adjacent to the spacer layer.

10. The device of claim 7 , wherein the layer of passive light absorber material does not contain phase-change material.

11. The device of claim 7 , wherein the layer of passive light absorber material is metallic.

12. The device of claim 1 , wherein one or more of the layers comprise an optical cavity that determines the spectral response of the device to incident light.

13. The device of claim 1 , wherein the stack is configured to provide a plurality of different spectral responses to incident light in a corresponding plurality of different regions, wherein:

the different spectral responses are provided at least partly by configuring at least a subset of the regions to have different sequences of layers and/or different thicknesses of one or more corresponding layers; or

the different spectral responses are provided at least partly by configuring at least a subset of the regions such that the layer of light absorber material is switched into different phases.

14. The device of claim 13 , wherein the device is configured to provide a holographic effect using the plurality of different spectral responses.

15. A display, a color display, a security mark, a color filter, a decorative layer, a spectrometer or a window comprising the optical device of claim 1 .

16. The device of claim 1 , wherein one or more heating elements are provided to enable the refractive index of the phase change material to be altered by application of heat.

17. The device of claim 1 , wherein the device is configured to enable the refractive index of the phase change material to be altered by application of light.

18. The device of claim 1 , wherein the layer of light absorber material comprises a plurality of regions, the complex refractive index of the phase-change material in each region being settable to at least two values independently of the phase-change material in each of the other regions.

19. An optical device comprising a stack of layers including:

a capping layer;

a layer of light absorber material;

a layer of optically active material;

a reflective layer; and

a spacer layer between the reflective layer and the layer of light absorber material, wherein:

the light absorber material is a phase-change material having a complex refractive index that is settable to at least two values which confer different optical properties to the device;

one or more electrodes are provided to enable the refractive index of the phase change material to be altered by application of a voltage;

the spacer layer comprises a plurality of spacer layer sub-layers, at least two of the spacer layer sub-layers having different refractive indices relative to each other; and

no phase-change material having a complex refractive index that is settable to at least two values which confer different optical properties to the device is present between the spacer layer and the reflective layer.

20. The device of claim 19 , wherein electrodes are provided to enable the refractive index of the optically active material to be altered by application of a voltage.

21. The device of claim 19 , wherein the optically active material is a liquid crystal material and the stack further comprises a polarizer layer.

22. The device of claim 19 , wherein the optically active material is an electro-optically active material.

23. The device of claim 19 , wherein the optically active material is a liquid crystal material less than 300 nm thick, and the stack further comprises a polarizer layer.

24. The device of claim 19 , wherein the optically active material is an electro-optically active material less than 100 nm thick.

25. An optical device comprising a stack of the following layers:

a capping layer;

a layer of light absorber material;

a reflective layer; and

a spacer layer between the reflective layer and the layer of light absorber material, wherein:

the refractive index of the capping layer is at least 1.6;

the light absorber material is a phase-change material having a complex refractive index that is settable to at least two values which confer different optical properties to the device;

the spacer layer comprises a plurality of spacer layer sub-layers, at least two of the spacer layer sub-layers having different refractive indices relative to each other;

no phase-change material having a complex refractive index that is settable to at least two values which confer different optical properties to the device is present between the spacer layer and the reflective layer; and

the stack is configured to provide a plurality of different spectral responses to incident light in a corresponding plurality of different regions, wherein:

the different spectral responses are provided at least partly by configuring at least a subset of the regions to have different sequences of layers and/or different thicknesses of one or more corresponding layers; or

the different spectral responses are provided at least partly by configuring at least a subset of the regions such that the layer of light absorber material is switched into different phases.

26. An optical device comprising a stack of the following layers:

a capping layer;

a layer of light absorber material;

a layer of optically active material;

a reflective layer; and

a spacer layer between the reflective layer and the layer of light absorber material, wherein:

the light absorber material is a phase-change material having a complex refractive index that is settable to at least two values which confer different optical properties to the device;

the spacer layer comprises a plurality of spacer layer sub-layers, at least two of the spacer layer sub-layers having different refractive indices relative to each other; and

no phase-change material having a complex refractive index that is settable to at least two values which confer different optical properties to the device is present between the spacer layer and the reflective layer, and

the stack is configured to provide a plurality of different spectral responses to incident light in a corresponding plurality of different regions, wherein either:

the different spectral responses are provided at least partly by configuring at least a subset of the regions to have different sequences of layers and/or different thicknesses of one or more corresponding layers; or

the different spectral responses are provided at least partly by configuring at least a subset of the regions such that the layer of light absorber material is switched into different phases.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 22, 2018
From: HOSSEINI, PEIMAN; BHASKARAN, HARISH; BROUGHTON, BEN
To: OXFORD UNIVERSITY INNOVATION LIMITED
Reel/Frame 046660/0515 →
Priority Claims (1)
GB 1518371.8 · Oct 16, 2015 · national
Continuity (1)
Related Publication 20180284497A1 · Oct 4, 2018
Cited By (4)
US 12,250,892 US 12,292,623 US 12,332,511 US 12,697,834