IP Library Granted Patent US 12,730,060
Granted Patent B2
US 12,730,060 · App. 18/724,929 · Granted Sep 8, 2026

Systems and methods for photoacoustic microscopy

Inventor: Junjie Yao (Cary, NC)
Assignee: Duke University
G01N21/1702G01N21/19G01N21/65G01N29/221G01N29/2437G01N2021/655G01N2201/06113
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Quick Facts
Patent No.
US 12,730,060
App. No.
18/724,929
Granted
Sep 8, 2026
Kind
B2
Abstract

Systems and methods for producing an ultrafast functional photoacoustic microscopy system are disclosed herein. Such systems are configured to enable the imaging of microvasculature and functional dynamics of tissue samples with a broad field of view and high spatial resolution. According to several disclosed embodiments, a combination of a Raman path and a polygon scanner in water immersion and air immersion environments enables rapid imaging of target materials.

Claims (33)

1 . A photoacoustic microscopy system comprising:

a first dichroic reflecting surface;

a second dichroic reflecting surface;

a Raman path in optical communication with each of the first and second dichroic reflecting surfaces, the Raman path including:

a Raman shifter configured to receive a first portion of a laser from the first dichroic reflecting surface and shift a wavelength of the first portion; and

an optical delay line configured to receive a second portion of the laser from the first dichroic reflecting surface and delay the second portion from being received by the second dichroic reflecting surface; and

a scanner assembly in optical communication with the second dichroic reflecting surface such that it receives both the first portion of the laser and the second portion of the laser from the second dichroic reflecting surface, the scanner assembly including a polygon scanner configured to direct the received first and second portions to a target site.

2 . The photoacoustic microscopy system of claim 1 , further comprising a seed laser, the seed laser being configured to operate at at least about 2 MHz.

3 . The photoacoustic microscopy system of claim 1 , further comprising an objective assembly that includes an objective lens.

4 . The photoacoustic microscopy system of claim 1 , wherein the scanner assembly further comprises an ultrasound transducer.

5 . The photoacoustic microscopy system of claim 4 , wherein the scanner assembly further comprises a multimode optical fiber.

6 . The photoacoustic microscopy system of claim 4 , wherein the ultrasound transducer is spherically-focused.

7 . The photoacoustic microscopy system of claim 4 , wherein the ultrasound transducer is substantially flat.

8 . The photoacoustic microscopy system of claim 4 , wherein the ultrasound transducer comprises a piezoelectric layer, a matching layer, and a housing.

9 . The photoacoustic microscopy system of claim 1 , further comprising:

a water tank; and

an optically-transparent ultrasound transducer mounted above the water tank,

wherein an imaging plane of the photoacoustic microscopy system is disposed within the water tank.

10 . The photoacoustic microscopy system of claim 1 , wherein the scanner assembly further comprises a cylindrically-focused ultrasound transducer.

11 . The photoacoustic microscopy system of claim 1 , wherein the scanner assembly is water-immersible.

12 . The photoacoustic microscopy system of claim 11 , wherein the scanner assembly further comprises an optical-acoustic beam combiner, a rhomboid prism, and a right-angled prism.

13 . The photoacoustic microscopy system of claim 1 , wherein the scanner assembly is air-operated.

14 . A photoacoustic microscopy system comprising:

a Raman path having a Raman shifter configured to receive a first portion of a laser and shift a wavelength of the first portion and an optical delay line configured to receive a second portion of the laser and delay the second portion from being received at a location at which the first portion is received after its wavelength has been shifted;

a scanner assembly in optical communication with the Raman path such that the scanner assembly receives the first and second portions of the laser, the scanner assembly including a polygon scanner immersed in fluid.

15 . The photoacoustic microscopy system of claim 14 , wherein the scanner assembly further comprises an acoustic lens.

16 . The photoacoustic microscopy system of claim 15 , wherein the acoustic lens is positioned between an optical-acoustic beam combiner and the polygon scanner.

17 . The photoacoustic microscopy system of claim 16 , further comprising a prism permeable to sound and reflective to light is configured to project the laser through the Raman path.

18 . The photoacoustic microscopy system of claim 14 , wherein a photoacoustic imaging plane is an arc.

19 . A photoacoustic microscopy system comprising:

a Raman path having a Raman shifter configured to receive a first portion of a laser and shift a wavelength of the first portion and an optical delay line configured to receive a second portion of the laser and delay the second portion from being received at a location at which the first portion is received after its wavelength has been shifted;

a scanner assembly in optical communication with the Raman path such that the scanner assembly receives the first and second portions of the laser, the scanner assembly including a cylindrically-focused ultrasound transducer and an air-operated polygon scanner, the air-operated polygon scanner being configured to focus an excitation light along a focal line of the cylindrically-focused ultrasound transducer, and the cylindrically-focused ultrasound transducer being mounted within a water tank, between an imaging plane of the photoacoustic microscopy system and the air-operated polygon scanner.

20 . The photoacoustic microscopy system of claim 19 , wherein the imaging plane is substantially flat.

Continuity (2)
Provisional Application 63297030 · Jan 6, 2022
Related Publication 20250164387A1 · May 22, 2025
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