IP Library Granted Patent US 12,730,165
Granted Patent B2
US 12,730,165 · App. 18/698,742 · Granted Sep 8, 2026

System and methods for ultrafast widefield quantum sensing using neuromorphic vision sensors

Inventors: Zhiqin Chu (Hong Kong, CN); Can Li (Hong Kong, CN); Zhiyuan Du (Hong Kong, CN); Gupta Madhav (Hong Kong, CN); Feng Xu (Hong Kong, CN); Ngai Wong (Hong Kong, CN)
Assignee: The University of Hong Kong
G01R33/323G01N22/00G01N33/389G01R33/26B82Y15/00
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Quick Facts
Patent No.
US 12,730,165
App. No.
18/698,742
Granted
Sep 8, 2026
Kind
B2
Abstract

An ultrafast wide-field quantum sensing device using a neuromorphic event-based vision sensor includes a laser generating a laser beam; a dichroic mirror directing the laser beam onto a diamond sample and passing the laser beam reflected from the diamond, and an event camera receiving from the dichroic mirror the beam reflected from the diamond. A source of microwave energy applied to the diamond. A pulse generator synchronizes the microwave source and the event camera to create CW-ODMR measurements, wherein trigger pulses from the pulse generator are applied to the camera and microwave source. The optically detected magnetic resonance (ODMR) resonance frequency is determined based on the CW-ODMR measurements.

Claims (18)

1 . An ultrafast wide-field quantum sensing device using a neuromorphic event-based vision sensor comprising:

a laser generating a laser beam;

a dichroic mirror directing the laser beam onto a diamond sample and passing the fluorescence collected from the diamond;

an event camera receiving from the dichroic mirror the fluorescence reflected from the diamond;

a long-pass filter and an achromatic lens, wherein the fluorescence from the dichroic mirror to the event camera passes through the long-pass filter and achromatic lens in sequence;

a source of microwave energy (MW) applied to the diamond;

a pulse generator for syncing the microwave source and the event camera to create Continuous Wave-Optically Detected Magnetic Resonance (CW-ODMR) measurements, wherein trigger pulses from the pulse generator are applied to the camera and MW source; and

a computer to control the parameters of the pulse generator and the microwave source wherein the computer also processes raw data transmitted from the event camera.

2 . The ultrafast wide-field quantum sensing device of claim 1 wherein the laser is a 532 nm laser.

3 . The ultrafast wide-field quantum sensing device of claim 1 further including a microwave antenna with a terminator connected to the diamond.

4 . The ultrafast wide-field quantum sensing device of claim 1 further including an objective lens for focusing the laser beam on the diamond.

5 . The ultrafast wide-field quantum sensing device of claim 1 wherein the achromatic lens is a 250 mm tube lens.

6 . A method of computing the optically detected magnetic resonance (ODMR) resonance frequency, comprising the steps of:

collecting the raw events data from the ultrafast wide-field quantum sensing device of claim 1 for a frequency sweep;

repeating the frequency sweeping for L times;

summing the events of different repeats of the sweeping;

spatial filtering by summing up the results of a binning of nearby M*N pixels; and

averaging the temporal event sequences from each pixel with a time window of T.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 4, 2024
From: CHU, ZHIQIN; LI, CAN; DU, ZHIYUAN; MADHAV, GUPTA; XU, FENG; WONG, NGAI
To: THE UNIVERSITY OF HONG KONG
Reel/Frame 067012/0449 →
Continuity (2)
Provisional Application 63276369 · Nov 5, 2021
Related Publication 20240426951A1 · Dec 26, 2024
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