IP Library › Granted Patent US 12,619,058
Granted Patent B2
US 12,619,058 · App. 18/365,853 · Granted May 5, 2026

High-throughput spatial imaging system for biological samples

Inventors: Ang Li (Santa Clara, CA); Joseph R. Johnson (Redwood City, CA); Jean Marc Fan Chung Tsang Min Ching (Bellevue, WA); Dan Xie (Pleasanton, CA); Stephen Hsiang (San Francisco, CA); Yun-Ching Chang (Pleasanton, CA)
Assignee: Applied Materials, Inc.
G02B21/0076G02B21/06G06T7/0012
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Quick Facts
Patent No.
US 12,619,058
App. No.
18/365,853
Granted
May 5, 2026
Kind
B2
Abstract

An imaging system for capturing spatial images of biological tissue samples may include an imaging chamber configured to hold a biological tissue sample placed in the imaging system; a light source configured to illuminate the biological tissue sample to activate a plurality of fluorophores in the biological tissue sample; and a plurality of Time Delay and Integration (TDI) imagers configured to simultaneously scan the biological tissue sample, where the plurality of TDI imagers may be configured to separately receive light from different ones of the plurality of fluorophores.

Claims (27)

1 . An imaging system for capturing spatial images of biological tissue samples, the imaging system comprising:

an imaging chamber configured to hold a biological tissue sample placed in the imaging system;

a light source configured to illuminate the biological tissue sample to activate a plurality of fluorophores in the biological tissue sample; and

a plurality of Time Delay and Integration (TDI) imagers configured to simultaneously scan the biological tissue sample, wherein the plurality of TDI imagers are configured to separately receive light from different ones of the plurality of fluorophores.

2 . The imaging system of claim 1 , wherein the imaging system is configured to illuminate the biological tissue sample with light that is shaped similar to a shape one of the plurality of TDI imagers.

3 . The imaging system of claim 1 , further comprising a plurality of filters, each of which correspond to one of the plurality of fluorophores.

4 . The imaging system of claim 1 , further comprising a filter wheel, wherein a first filter on the filter wheel covers a first TDI imager in the plurality of TDI imagers, and a second filter on the filter wheel covers a second TDI imager in the plurality of TDI imagers.

5 . The imaging system of claim 1 , wherein the imaging system is configured to scan a strip of the biological tissue sample in a first direction, then scan an adjacent strip of the biological tissue sample in a second direction that is opposite of the first direction.

6 . The imaging system of claim 5 , wherein the imaging system is configured to focus the imaging system on the biological tissue sample at a beginning of each strip being scanned.

7 . The imaging system of claim 5 , wherein the imaging system is configured to focus the imaging system continually during operation based on a surface mapping of the biological tissue sample.

8 . The imaging system of claim 1 , further comprising a doublet and a cylindrical lens configured to provide Critical-Kholer illumination of the biological tissue sample.

9 . The imaging system of claim 1 , further comprising a Powell lens and a collimator to illuminate the biological tissue sample.

10 . The imaging system of claim 1 , wherein a motion of the biological tissue sample is synchronized with an image capture of the plurality of TDI imagers using a trigger signal that is derived by dividing a main clock signal.

11 . A method of capturing spatial images of biological tissue samples, the method comprising:

mounting a biological tissue sample in an imaging chamber of an imaging system;

directing light from a light source to illuminate an area on the biological tissue sample to activate a plurality of fluorophores in the biological tissue sample; and

scanning the biological tissue sample with a plurality of Time Delay and Integration (TDI) imagers configured to simultaneously scan the biological tissue sample, wherein the plurality of TDI imagers are configured to separately receive light from different ones of the plurality of fluorophores.

12 . The method of claim 11 , further comprising directing a light signal through a first filter onto a first TDI imager in the plurality of TDI imagers using a multiband dichroic mirror.

13 . The method of claim 11 , wherein a first fluorophore in the plurality of fluorophores is received by a first TDI imager in the plurality of TDI imagers, a second fluorophore in the plurality of fluorophores is received by a second TDI imager in the plurality of TDI emitters, and the first fluorophore and the second fluorophore have non-adjacent wavelength ranges in the plurality of fluorophores.

14 . The method of claim 11 , further comprising directing a light signal received from the biological tissue sample into a prism to separate the light signal into separate light signals corresponding to different fluorophores in the plurality of fluorophores.

15 . The method of claim 11 , further comprising processing first raw image data from a first strip received from the plurality of TDI imagers while second raw image data is being scanned by the plurality of TDI imagers.

16 . An imaging system comprising:

a plurality of Time Delay and Integration (TDI) imagers configured to simultaneously scan a biological tissue sample, wherein the plurality of TDI imagers are configured to separately receive light from different ones of a plurality of fluorophores.

17 . The imaging system of claim 16 , further comprising a plurality of filters, each of which correspond to one of the plurality of fluorophores.

18 . The imaging system of claim 16 , further comprising a filter wheel, wherein a first filter on the filter wheel covers a first TDI imager in the plurality of TDI imagers, and a second filter on the filter wheel covers a second TDI imager in the plurality of TDI imagers.

19 . The imaging system of claim 16 , wherein the imaging system is configured to scan a strip of the biological tissue sample in a first direction, then scan an adjacent strip of the biological tissue sample in a second direction that is opposite of the first direction.

20 . The imaging system of claim 19 , wherein the imaging system is configured to focus the imaging system on the biological tissue sample at a beginning of each strip being scanned.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 21, 2023
From: LI, ANG; JOHNSON, JOSEPH R.; TSANG MIN CHING, JEAN MARC FAN CHUNG; XIE, DAN; HSIANG, STEPHEN; CHANG, YUN-CHING
To: APPLIED MATERIALS, INC.
Reel/Frame 066091/0119 →
Continuity (2)
Provisional Application 63395261 · Aug 4, 2022
Related Publication 20240045191A1 · Feb 8, 2024
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