Imaging of layered structures in biological tissues with opto-acoustic front surface transducer

被引:46
作者
Karabutov, AA [1 ]
Savateeva, EV [1 ]
Oraevsky, AA [1 ]
机构
[1] Univ Texas, Med Branch, Ctr Biomed Engn, Optoacoust Imaging & Spect Lab, Galveston, TX 77555 USA
来源
LASER-TISSUE INTERACTION X: PHOTOCHEMICAL, PHOTOTHERMAL, AND PHOTOMECHANICAL, PROCEEDINGS OF | 1999年 / 3601卷
关键词
opto-acoustic transducer; skin lesions; melanoma; port-wine stains;
D O I
10.1117/12.350011
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Optoacoustic tomography is a promising technique for imaging skin layered structures and vascular and pigmented lesions in vivo. The imaging of skin is complicated by necessity to perform laser irradiation and acoustic detection from the same site at the surface. We designed an opto-acoustic transducer incorporating a fiber-optic light delivery system and a LiNbO3 piezoelectric detector in one device. The results of test experiments in phantoms, chicken cockscomb, and human hand yielded the following parameters of the opto-acoustic transducer: (1) sensitivity of 0.98 V/bar, (2) temporal resolution of acoustic detection of 5 ns. This fast response time allows one to achieve an in-depth resolution of 10-15 mu m. A small size of the detector provides lateral resolution of 200 mu m Feasibility studies demonstrated that the current design of the optoacoustic transducer permits monitoring of the light absorbing heterogeneities at the depth up to 4 mm. The principle scheme of the opto-acoustic transducer design, theoretical background and experimental testing is presented. Theoretical model of the wide-band ultrasonic detection is developed The principles of the opto-acoustic image reconstruction under conditions of significant diffraction of acoustic wave are described. A basic algorithm for reconstruction of 3-D images from the laser-induced acoustic waves recorded in backward mode is also presented.
引用
收藏
页码:284 / 295
页数:12
相关论文
共 31 条
[1]  
ALFANO RR, 1998, P SPIE, V3250
[2]  
ANDERSON R, 1998, P SPIE, V3245
[3]   In vivo fluorescence imaging for tissue diagnostics [J].
AnderssonEngels, S ;
afKlinteberg, C ;
Svanberg, K ;
Svanberg, S .
PHYSICS IN MEDICINE AND BIOLOGY, 1997, 42 (05) :815-824
[4]  
[Anonymous], 1993, LASER OPTOACOUSTICS
[5]   Laser optoacoustic imaging for breast cancer diagnostics: Limit of detection and comparison with X-ray and ultrasound imaging [J].
Esenaliev, RO ;
Karabutov, AA ;
Tittel, FK ;
Fornage, BD ;
Thomsen, SL ;
Stelling, C ;
Oraevsky, AA .
OPTICAL TOMOGRAPHY AND SPECTROSCOPY OF TISSUE: THEORY, INSTRUMENTATION, MODEL, AND HUMAN STUDIES II, PROCEEDINGS OF, 1997, 2979 :71-82
[6]   Photoacoustic blood cell detection and imaging of blood vessels in phantom tissue [J].
Hoelen, CGA ;
Pongers, R ;
Hamhuis, G ;
de Mul, FFM ;
Greve, J .
OPTICAL AND IMAGING TECHNIQUES FOR BIOMONITORING III, PROCEEDINGS OF, 1998, 3196 :142-153
[7]   Optical coherence tomography and microscopy in gastrointestinal tissues [J].
Izatt, JA ;
Kulkarni, MD ;
Wang, HW ;
Kobayashi, K ;
Sivak, MV .
IEEE JOURNAL OF SELECTED TOPICS IN QUANTUM ELECTRONICS, 1996, 2 (04) :1017-1028
[8]   TIME-RESOLVED OPTOACOUSTIC DETECTION OF ABSORBING PARTICLES IN SCATTERING MEDIA [J].
KARABUTOV, AA ;
PODYMOVA, NB ;
LETOKHOV, VS .
JOURNAL OF MODERN OPTICS, 1995, 42 (01) :7-11
[9]  
Karabutov AA, 1996, APPL PHYS B-LASERS O, V63, P545
[10]  
KARABUTOV AA, 1999, IN PRESS BACKWARD MO