Photoacoustic imaging with focused ultrasonic probe beam

被引:1
作者
Xiang, Liangzhong [1 ]
Gu, Huaimin [1 ]
机构
[1] South China Normal Univ, Inst Laser Life Sci, Guangzhou 510631, Peoples R China
来源
FOURTH INTERNATIONAL CONFERENCE ON PHOTONICS AND IMAGING IN BIOLOGY AND MEDICINE, PTS 1 AND 2 | 2006年 / 6047卷
基金
中国国家自然科学基金;
关键词
photoacoustic tomography; ultrasonic probe beam; acoustic scattering; filter back-projection algorithm;
D O I
10.1117/12.709928
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
This paper presents a novel model of photoacoustic tomography with an ultrasonic probe beam. A strict theory describes the nonlinear interaction between pholoacoustic wave and ultrasonic probe beam. When a pulse laser irradiates on biological tissues, die laser energy will be absorbed by the identity molecule of the tissues, and be converted into heat. Subsequently, the thermal expansion of the instantaneously heated tissues induces photoacoustic waves. So the density, temperature and compressibility of the absorption area will be changed. A focus ultrasonic probe beam with a single frequency passes through the irradiated area, the changes of the properties of the irradiated medium will be coupled with the ultrasonic probe beam, which will propagate through the medium with minimal distortion and can be detected at the surface of the medium. The PA signal in situ can be obtained by demodulating the detected ultrasonic beam. It will take out much more information from the interaction area. which can reflect not only the intrinsic optical properties but also the mechanical and acoustical properties of the tissue. In our experimentation, a Q-switched Nd: YAG pulse laser operated at 1064nm was employed to generate photoacoustic signal., the frequency of ultrasonic probe beam is 10M. By demodulating the detected ultrasonic beam. we obtained very high quality tomography images. So it will provide a new promising method for tumour detection and noninvasion function imaging.
引用
收藏
页数:6
相关论文
共 50 条
[1]   Photoacoustic tomography with ultrasound probe beam [J].
Zeng, YG ;
Xing, D ;
Wang, Y ;
Tang, Y ;
Fu, HB .
ALT'03 INTERNATIONAL CONFERENCE ON ADVANCED LASER TECHNOLOGIES: BIOMEDICAL OPTICS, 2003, 5486 :252-256
[2]   Photoacoustic tomograph with ultrasound probe beam [J].
Zeng, YG ;
Xing, D .
PHOTONICS AND IMAGING IN BIOLOGY AND MEDICINE, 2003, 5254 :347-353
[3]   Influence on imaging qualities of photoacoustic tomography caused by mismatch of ultrasonic velocities [J].
Yang, Sihua ;
Gu, Huaimin .
FOURTH INTERNATIONAL CONFERENCE ON PHOTONICS AND IMAGING IN BIOLOGY AND MEDICINE, PTS 1 AND 2, 2006, 6047
[4]   Photoacoustic imaging using an 8-beam Fabry-Perot scanner [J].
Huynh, Nam ;
Ogunlade, Olumide ;
Zhang, Edward ;
Cox, Ben ;
Beard, Paul .
PHOTONS PLUS ULTRASOUND: IMAGING AND SENSING 2016, 2016, 9708
[5]   A Study of reconstruction in photoacoustic tomography with a focused transducer [J].
Li, Meng-Lin ;
Wang, Lihong V. .
PHOTONS PLUS ULTRASOUND: IMAGING AND SENSING 2007, 2007, 6437
[6]   Development and Application of spherical Ultrasonic Array probe for 3D Imaging [J].
Chang, Jun-jie ;
Zhong, Hai-ying .
PROCEEDINGS OF 2019 FAR EAST NDT NEW TECHNOLOGY & APPLICATION FORUM (FENDT), 2019, :178-182
[7]   Organic Nanostructures for Photoacoustic Imaging [J].
Kim, Jeesu ;
Park, Sungjo ;
Lee, Changho ;
Kim, Jin Young ;
Kim, Chulhong .
CHEMNANOMAT, 2016, 2 (03) :156-166
[8]   The challenges for quantitative photoacoustic imaging [J].
Cox, B. T. ;
Laufer, J. G. ;
Beard, P. C. .
PHOTONS PLUS ULTRASOUND: IMAGING AND SENSING 2009, 2009, 7177
[9]   Low-noise small-size microring ultrasonic detectors for high-resolution photoacoustic imaging [J].
Chen, Sung-Liang ;
Ling, Tao ;
Guo, L. Jay .
JOURNAL OF BIOMEDICAL OPTICS, 2011, 16 (05)
[10]   Subwavelength Focusing Beam and Superresolution Ultrasonic Imaging Using a Core-shell Lens [J].
Leao-Neto, J. P. ;
Cardoso, G. S. ;
Marques, A. S. ;
Andrade, M. A. B. ;
Adamowski, J. C. ;
Pavan, T. Z. ;
Silva, G. T. ;
Lopes, J. H. .
PHYSICAL REVIEW APPLIED, 2020, 13 (01)