IP Library › Granted Patent US 11,009,658
Granted Patent B2
US 11,009,658 · App. 16/803,938 · Granted May 18, 2021

Waveguide integrated plasmon assisted field emission detector

Inventors: William M. Jones (Pasadena, CA); Lucia B. De Rose (Pasadena, CA); Axel Scherer (Barnard, VT)
Assignee: CALIFORNIA INSTITUTE OF TECHNOLOGY
G02B6/1226G01J1/0425H01L31/02327G01N2201/0873
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Quick Facts
Patent No.
US 11,009,658
App. No.
16/803,938
Granted
May 18, 2021
Kind
B2
Abstract

Light detectors that combine field emission with light focusing by surface plasmon polaritons. Methods and devices that allow detection and measurement of light at high frequencies in the THz range are described. The disclosed devices include plasmonic metal contacts with a narrow nanometer-sized gap to couple an optical waveguide mode into a plasmonic mode thereby generating filed emission currents by biasing the contacts.

Claims (25)

1. A method of detecting and measuring light comprising:

providing first and second plasmonic metal contacts separated by a gap in a range of 10 to 50 nm to form a plasmon waveguide;

coupling the first and the second plasmonic metal contacts with an on-chip optical waveguide having a first refractive index, the optical waveguide being separated vertically from the plasmon waveguide by a dielectric layer therebetween having a second refractive index, the second refractive index being greater than one and less than the first refractive index;

coupling light into the optical waveguide to generate an optical mode;

applying a biasing voltage to the first and the second plasmonic metal contacts; and

configuring the plasmon waveguide such that the optical mode is coupled into a plasmon mode within the gap, thereby generating a field emission current as a function of an intensity of the light, the field emission current flowing through the gap from the first to the second plasmonic metal contact.

2. The method of claim 1 , wherein the first and second plasmonic metal contacts are selected from the group consisting of gold, silver, copper, aluminum, or a combination thereof.

3. The method of claim 1 , wherein the light is coupled into the optical waveguide from an optical fiber.

4. The method of claim 1 , wherein the dielectric layer has a width in a range of 15 nm to 25 nm.

5. The method of claim 4 , wherein the dielectric layer comprises silicon dioxide and the optical waveguide is made of silicon.

6. The method of claim 4 , wherein the dielectric layer has a width of 20 nm.

7. A photodetector comprising:

an optical waveguide having a first refractive index and being connected with a plasmonic waveguide, the plasmonic waveguide comprising first and a second plasmonic metal contacts separated by a gap of 10 nm to 50 nm,

the optical waveguide being separated vertically from the plasmonic waveguide by a dielectric layer therebetween having a second refractive index, the second refractive index being greater than one and less than the first refractive index, wherein:

the optical waveguide is configured to receive light to generate an optical mode; and

the plasmonic waveguide is configured to allow coupling of the optical mode into a plasmonic mode within the gap.

8. The photodetector of claim 7 , wherein the optical waveguide receives the light from an optical fiber.

9. The photodetector of claim 7 , wherein the first and the second plasmonic metal contacts are configured to receive a bias voltage to generate a field emission current flowing through the gap from the first plasmon metal contact to the second plasmon metal contact.

10. The photodetector of claim 9 , wherein the first and/or the second plasmonic metal contacts are selected from the group consisting of gold, silver, copper, aluminum, or a combination thereof.

11. The photodetector of claim 9 , further comprising a gate metal contact connected with the optical waveguide, the gate metal contact being configured to receive a voltage to bias the optical waveguide, thereby controlling the field emission current.

12. The photodetector of claim 7 , wherein the dielectric layer has a thickness in a 15 nm to 25 nm range, with a first and a second side.

13. The photodetector of claim 12 , wherein the low index dielectric layer has a thickness of 20 nm.

14. The photodetector of claim 12 , wherein the optical waveguide is configured to receive the light and to couple the light to plasmonic waveguide.

15. The photodetector of claim 14 , wherein the dielectric layer comprises silicon dioxide and the optical waveguide comprises silicon.

16. The photodetector of claim 15 , wherein the dielectric layer is connected with the first and the second plasmonic metal contacts on the first side, and with the optical waveguide at the second side.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 3, 2020
From: JONES, WILLIAM M.; DE ROSE, LUCIA B.; SCHERER, AXEL
To: CALIFORNIA INSTITUTE OF TECHNOLOGY
Reel/Frame 052000/0893 →
Continuity (2)
Provisional Application 62812748 · Mar 1, 2019
Related Publication 20200278294A1 · Sep 3, 2020
Cited By (1)
US 12,529,919