Enhancement of Photoacoustic Signal Strength with Continuous Wave Optical Pre-Illumination: A Non-Invasive Technique

被引:13
作者
Thomas, Anjali [1 ]
Paul, Souradip [1 ]
Mitra, Joy [2 ]
Singh, Mayanglambam Suheshkumar [1 ]
机构
[1] Indian Inst Sci Educ & Res Thiruvananthapuram IIS, Biomed Instrumentat & Imaging Lab, Sch Phys SoP, Thiruvananthapuram 695551, Kerala, India
[2] Indian Inst Sci Educ & Res Thiruvananthapuram IIS, Sch Phys SoP, Scanning Probe Microscopy & Plasmon Lab, Thiruvananthapuram 695551, Kerala, India
关键词
photoacoustic imaging; signal enhancement; pre-illumination; photo-thermal effect; heat capacity;
D O I
10.3390/s21041190
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
Use of portable and affordable pulse light sources (light emitting diodes (LED) and laser diodes) for tissue illumination offers an opportunity to accelerate the clinical translation of photoacoustic imaging (PAI) technology. However, imaging depth in this case is limited because of low output (optical) power of these light sources. In this work, we developed a noninvasive technique for enhancing strength (amplitude) of photoacoustic (PA) signal. This is a photothermal-based technique in which a continuous wave (CW) optical beam, in addition to short-pulse (similar to nsec) laser beam, is employed to irradiate and, thus, raise the temperature of sample material selectively over a pre-specified region of interest (we call the process as pre-illumination). The increase in temperature, in turn enhances the PA-signal strength. Experiments were conducted in methylene blue, which is one of the commonly used contrast agents in laboratory research studies, to validate change in temperature and subsequent enhancement of PA-signal strength for the following cases: (1) concentration or optical absorption coefficient of sample, (2) optical power of CW-optical beam, and (3) time duration of pre-illumination. A theoretical hypothesis, being validated by numerical simulation, is presented. To validate the proposed technique for clinical and/or pre-clinical applications (diagnosis and treatments of cancer, pressure ulcers, and minimally invasive procedures including vascular access and fetal surgery), experiments were conducted in tissue-mimicking Agar phantom and ex-vivo animal tissue (chicken breast). Results demonstrate that pre-illumination significantly enhances PA-signal strength (up to similar to 70% (methylene blue), similar to 48% (Agar phantom), and similar to 40% (chicken tissue)). The proposed technique addresses one of the primary challenges in the clinical translation of LED-based PAI systems (more specifically, to obtain a detectable PA-signal from deep-seated tissue targets).
引用
收藏
页码:1 / 18
页数:18
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