Jin Long, Liang Yizhi
Guangdong Provincial Key Laboratory of Fiber Optic Sensing and Communications, Institute of Photonics Technology, Jinan University, Guangzhou, 510632, China.
Vis Comput Ind Biomed Art. 2021 Apr 30;4(1):11. doi: 10.1186/s42492-021-00076-y.
Fiber laser technology has experienced a rapid growth over the past decade owing to increased applications in precision measurement and optical testing, medical care, and industrial applications, including laser welding, cleaning, and manufacturing. A fiber laser can output laser pulses with high energy, a high repetition rate, a controllable wavelength, low noise, and good beam quality, making it applicable in photoacoustic imaging. Herein, recent developments in fiber-laser-based photoacoustic microscopy (PAM) are reviewed. Multispectral PAM can be used to image oxygen saturation or lipid-rich biological tissues by applying a Q-switched fiber laser, a stimulated Raman scattering-based laser source, or a fiber-based supercontinuum source for photoacoustic excitation. PAM can also incorporate a single-mode fiber laser cavity as a high-sensitivity ultrasound sensor by measuring the acoustically induced lasing-frequency shift. Because of their small size and high flexibility, compact head-mounted, wearable, or hand-held imaging modalities and better photoacoustic endoscopes can be enabled using fiber-laser-based PAM.
在过去十年中,光纤激光技术发展迅速,这得益于其在精密测量与光学测试、医疗保健以及包括激光焊接、清洁和制造在内的工业应用中的应用不断增加。光纤激光器能够输出具有高能量、高重复率、可控波长、低噪声以及良好光束质量的激光脉冲,使其适用于光声成像。在此,对基于光纤激光的光声显微镜(PAM)的最新进展进行综述。多光谱PAM可通过应用调Q光纤激光器、基于受激拉曼散射的激光源或基于光纤的超连续谱源进行光声激发,来对氧饱和度或富含脂质的生物组织进行成像。PAM还可通过测量声学诱导的激光频率偏移,将单模光纤激光腔用作高灵敏度超声传感器。由于其体积小、灵活性高,基于光纤激光的PAM能够实现紧凑的头戴式、可穿戴式或手持式成像模式以及更好的光声内窥镜。