TY - JOUR
T1 - High-Frequency 3D Photoacoustic Computed Tomography Using an Optical Microring Resonator
AU - Rong, Qiangzhou
AU - Lee, Youngseop
AU - Tang, Yuqi
AU - Vu, Tri
AU - Taboada, Carlos
AU - Zheng, Wenhan
AU - Xia, Jun
AU - Czaplewski, David A.
AU - Zhang, Hao F.
AU - Sun, Cheng
AU - Yao, Junjie
N1 - Publisher Copyright:
Copyright © 2022 Qiangzhou Rong et al.
PY - 2022/1
Y1 - 2022/1
N2 - 3D photoacoustic computed tomography (3D-PACT) has made great advances in volumetric imaging of biological tissues, with high spatial-temporal resolutions and large penetration depth. The development of 3D-PACT requires high-performance acoustic sensors with a small size, large detection bandwidth, and high sensitivity. In this work, we present a new high-frequency 3D-PACT system that uses a microring resonator (MRR) as the acoustic sensor. The MRR sensor has a size of 80 μm in diameter and was fabricated using the nanoimprint lithography technology. Using the MRR sensor, we have developed a transmission-mode 3D-PACT system that has achieved a detection bandwidth of ~23 MHz, an imaging depth of ~8 mm, a lateral resolution of 114 μm, and an axial resolution of 57 μm. We have demonstrated the 3D PACT’s performance on in vitro phantoms, ex vivo mouse brain, and in vivo mouse ear and tadpole. The MRR-based 3D-PACT system can be a promising tool for structural, functional, and molecular imaging of biological tissues at depths.
AB - 3D photoacoustic computed tomography (3D-PACT) has made great advances in volumetric imaging of biological tissues, with high spatial-temporal resolutions and large penetration depth. The development of 3D-PACT requires high-performance acoustic sensors with a small size, large detection bandwidth, and high sensitivity. In this work, we present a new high-frequency 3D-PACT system that uses a microring resonator (MRR) as the acoustic sensor. The MRR sensor has a size of 80 μm in diameter and was fabricated using the nanoimprint lithography technology. Using the MRR sensor, we have developed a transmission-mode 3D-PACT system that has achieved a detection bandwidth of ~23 MHz, an imaging depth of ~8 mm, a lateral resolution of 114 μm, and an axial resolution of 57 μm. We have demonstrated the 3D PACT’s performance on in vitro phantoms, ex vivo mouse brain, and in vivo mouse ear and tadpole. The MRR-based 3D-PACT system can be a promising tool for structural, functional, and molecular imaging of biological tissues at depths.
UR - https://www.scopus.com/pages/publications/85142366359
U2 - 10.34133/2022/9891510
DO - 10.34133/2022/9891510
M3 - 文章
AN - SCOPUS:85142366359
SN - 2765-8031
VL - 2022
JO - BME Frontiers
JF - BME Frontiers
M1 - 9891510
ER -