IP Library Granted Patent US 10,863,895
Granted Patent B2
US 10,863,895 · App. 15/577,222 · Granted Dec 15, 2020

Terahertz endoscopy through laser-driven terahertz sources and detectors

Inventor: Mona Jarrahi (Los Angeles, CA)
Assignee: The Regents of the University of California
A61B1/063A61B1/00188A61B1/00195A61B1/04A61B1/05A61B1/0676A61B1/2676A61B1/2736G01J3/2823G01J3/42G01N21/3586H01L27/14601H01L31/0224H01L31/03042H01L31/08Y02E10/544
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Quick Facts
Patent No.
US 10,863,895
App. No.
15/577,222
Granted
Dec 15, 2020
Kind
B2
Abstract

Terahertz imaging systems for endoscopy are provided. Terahertz imaging systems can be utilized in scanning tissue. Terahertz imaging systems in accordance with embodiments of the invention can include terahertz sources, terahertz detectors, and/or rotating elements. The terahertz sources can generate terahertz radiation and have plasmonic contact electrodes that can be illuminated by optical pump beams. The terahertz detectors can receive terahertz field data. The terahertz source and detector can be arranged in an array. The rotating elements can be mirror mounted at a particular angle on a micromotor. The terahertz source, rotating element, and terahertz detector can be arranged in an catheter.

Claims (36)

1. A terahertz imaging system for endoscopy, comprising:

a terahertz imager configured to receive terahertz image data comprising:

a fiber bundle;

at least one terahertz source configured to generate terahertz radiation, wherein each of the at least one terahertz source has an active area having at least one plasmonic contact electrode that can be illuminated by optical pump beams to generate the terahertz radiation; and

at least one terahertz detector configured to receive terahertz field data, wherein each of the at least one terahertz detector has an active area having at least one plasmonic contact electrode that can be illuminated by optical pump beams to induce an output proportional to the received terahertz field; and

wherein the at least one terahertz source and detector are arranged in a two dimensional array such that each terahertz detector is surrounded by a plurality of terahertz sources symmetrically; and

wherein the fiber bundle couples optical pump beams to the active area of the at least one terahertz source and optical probe beams to the active area of the at least one terahertz detector.

2. The terahertz imaging system of claim 1 , further comprising an optical light source configured to illuminate at least one target.

3. The terahertz imaging system of claim 2 , further comprising an optical camera configured to receive optical image data related to the illuminated target.

4. The terahertz imaging system of claim 1 , further comprising a laser source configured to pump the at least one terahertz source and to probe the at least one terahertz detector using femtosecond optical beams.

5. The terahertz imaging system of claim 4 , wherein the laser source is a phase-modulated dual-laser-synchronized control femtosecond laser.

6. The terahertz imaging system of claim 1 , wherein the at least one terahertz source and detector are fabricated on an InGaAs substrate.

7. The terahertz imaging system of claim 1 , wherein the at least one terahertz source and detector are fabricated on a GaAs substrate.

8. The terahertz imaging system of claim 1 , further comprising an electrical input to the at least one terahertz source to generate a bias voltage.

9. The terahertz imaging system of claim 1 , further comprising an electrical output from the at least one terahertz detector configured to collect the output from the at least one terahertz detector.

10. The terahertz imaging system of claim 1 , wherein the at least one terahertz source and detector are mounted on a silicon lens.

11. The terahertz imaging system of claim 1 , wherein the at least one terahertz source and detector are arranged in an array such that each terahertz detector is surrounded by four terahertz sources symmetrically.

12. The terahertz imaging system of claim 3 , wherein image data is collected simultaneously from the optical camera and the terahertz imager.

13. The terahertz imaging system of claim 12 , wherein at least one panoramic image is generated from the optical image data and terahertz image data using cross registration algorithms to map the optical image data to the terahertz image data.

14. The terahertz imaging system of claim 13 , wherein the at least one terahertz source and detector are compatible with 1550 nanometer optical wavelengths.

15. The terahertz imaging system of claim 13 , wherein the at least one terahertz source and detector are compatible with at least one of: 800 nanometer optical wavelengths and 1000 nanometer optical wavelengths.

16. The terahertz imaging system of claim 1 , further comprising at least one optical lens.

17. A terahertz imaging system for endoscopy, comprising:

a terahertz imager configured to receive terahertz image data comprising:

a fiber bundle;

at least one terahertz source configured to generate terahertz radiation, wherein each of the at least one terahertz source has an active area that can be illuminated by optical pump beams to generate the terahertz radiation; and

at least one rotating element configured to reflect the generated terahertz radiation across scanned material;

at least one terahertz detector configured to receive terahertz radiation reflected by the at least one rotating element, wherein each of the at least one terahertz detector has an active area that can be illuminated by optical probe beams to induce an output proportional to the received terahertz field;

wherein the at least one terahertz source and detector are arranged in a two-dimensional array such that each terahertz detector is surrounded by a plurality of terahertz sources symmetrically;

wherein the fiber bundle couples optical pump beams to the active area of the at least one terahertz source and optical probe beams to the active area of the at least one terahertz detector; and

wherein the at least one terahertz source, at least one rotating element, and at least one terahertz detector are arranged in a catheter.

18. The terahertz imaging system of claim 17 , wherein the at least one rotating element is a mirror mounted at a particular angle on a micromotor within the catheter.

19. The terahertz imaging system of claim 18 , wherein the micromotor can rotate the at least one rotating element during reflection of the generated terahertz radiation across the scanned material.

20. The terahertz imaging system of claim 17 , wherein:

the at least one terahertz source has at least one plasmonic contact electrode; and

the at least one terahertz detector has at least one plasmonic contact electrode.

Assignments (1)
CONFIRMATORY LICENSE Recorded Aug 29, 2018
From: CALIFORNIA, UNIVERSITY OF
To: NAVY, SECRETARY OF THE UNITED STATES OF AMERICA
Reel/Frame 046971/0903 →
Continuity (3)
Provisional Application 62167201 · May 27, 2015
Provisional Application 62579676 · Oct 31, 2017
Related Publication 20190150719A1 · May 23, 2019
Cited By (1)
US 12,498,615