Development of Real-Time 3-D Photoacoustic Imaging System Employing Spherically Curved Array Transducer

被引:11
作者
Nagaoka, Ryo [1 ]
Tabata, Takuya [1 ]
Takagi, Ryo [2 ]
Yoshizawa, Shin [2 ]
Umemura, Shin-Ichiro [2 ]
Saijo, Yoshifumi [1 ]
机构
[1] Tohoku Univ, Grad Sch Biomed Engn, Biomed Imaging Lab, Sendai, Miyagi 9808579, Japan
[2] Tohoku Univ, Grad Sch Biomed Engn, Ultrasound Enhanced Nanomed Lab, Sendai, Miyagi 9808579, Japan
关键词
3-D imaging; light wavelength dependence of photoacoustic (PA) signals; PA imaging; real-time systems; tomography; ultrasonic transducer arrays; IN-VIVO; OPTOACOUSTIC TOMOGRAPHY; HIGH-RESOLUTION; GOLD NANORODS; HUMAN SKIN; MICROSCOPY; MICROVASCULATURE; VISUALIZATION; SENSITIVITY; RADIATION;
D O I
10.1109/TUFFC.2017.2718030
中图分类号
O42 [声学];
学科分类号
070206 ; 082403 ;
摘要
Photoacoustic (PA) imaging is a promising imaging modality to visualize specific living tissues based on the light absorption coefficients without dyeing. In this paper, a real-time PA imaging system with a tunable laser was newly developed with an originally designed spherically curved array transducer. Five different series of experiments were conducted to validate the PA measurement system. The peak frequency of the transducer response was 17.7 MHz, and a volume-imaging rate of 3-D volume imaging was 10-20 volumes per second. The spatial resolution of imaging was 90-105 mu m along both the axial and lateral directions. The developed imaging system could measure a difference on an absorption coefficient of gold nanorods. Additionally, the PA imaging could visualize the in vivo microvasculatures of a human hand. This PA imaging system with higher spatial-temporal resolution and the tunable laser further should enhance our understanding of not only basic properties of the photo acoustics but also clinical applications.
引用
收藏
页码:1223 / 1233
页数:11
相关论文
共 38 条
  • [31] Noninvasive laser-induced photoacoustic tomography for structural and functional in vivo imaging of the brain
    Wang, XD
    Pang, YJ
    Ku, G
    Xie, XY
    Stoica, G
    Wang, LHV
    [J]. NATURE BIOTECHNOLOGY, 2003, 21 (07) : 803 - 806
  • [32] 4-D Photoacoustic Tomography
    Xiang, Liangzhong
    Wang, Bo
    Ji, Lijun
    Jiang, Huabei
    [J]. SCIENTIFIC REPORTS, 2013, 3
  • [33] Universal back-projection algorithm for photoacoustic computed tomography
    Xu, MH
    Wang, LHV
    [J]. PHYSICAL REVIEW E, 2005, 71 (01):
  • [34] Analytic explanation of spatial resolution related to bandwidth and detector aperture size in thermoacoustic or photoacoustic reconstruction
    Xu, MH
    Wang, LV
    [J]. PHYSICAL REVIEW E, 2003, 67 (05): : 15 - 056605
  • [35] Non-invasive visualization of melanin and melanocytes by reflectance-mode confocal microscopy
    Yamashita, T
    Kuwahara, T
    González, S
    Takahashi, M
    [J]. JOURNAL OF INVESTIGATIVE DERMATOLOGY, 2005, 124 (01) : 235 - 240
  • [36] In vivo volumetric imaging of subcutaneous microvasculature by photoacoustic microscopy
    Zhang, Hao F.
    Maslov, Konstantin
    Li, Meng-Lin
    Stoica, George
    Wang, Lihong V.
    [J]. OPTICS EXPRESS, 2006, 14 (20): : 9317 - 9323
  • [37] Functional photoacoustic microscopy for high-resolution and noninvasive in vivo imaging
    Zhang, Hao F.
    Maslov, Konstantin
    Stoica, George
    Wang, Lihong V.
    [J]. NATURE BIOTECHNOLOGY, 2006, 24 (07) : 848 - 851
  • [38] Tutorial on photoacoustic tomography
    Zhou, Yong
    Yao, Junjie
    Wang, Lihong V.
    [J]. JOURNAL OF BIOMEDICAL OPTICS, 2016, 21 (06)