Du Shumin, Chen Zhongjiang, Xing Da
Opt Lett. 2021 Apr 1;46(7):1724-1727. doi: 10.1364/OL.415368.
Viscoelasticity is closely related to the physiological characteristics of biological tissues. In this Letter, we propose a novel spectral interferometric depth-resolved photoacoustic viscoelasticity imaging (SID-PAVEI) method, to the best of our knowledge for the first time, which breaks the plight of surface viscoelasticity imaging and achieves an internal visible microscale SID-PAVEI in a noncontact fashion. In this work, we employ a high-sensitive and depth-resolved spectral domain low coherence interferometry (SDLCI) to remotely track photoacoustic-induced strain response of absorbers in situ. By decoupling the phase and amplitude of the photoacoustic-encoded spectral interference signal, the SID-PAVEI and scattering structure imaging (SSI) can be obtained simultaneously. Depth-resolved performance of the SID-PAVEI and the SSI in one scan were demonstrated by imaging biological tissues. The method opens new perspectives for three-dimensional microscale viscoelasticity imaging and provides a great potential in multi-parametric characterizing pathological information.
粘弹性与生物组织的生理特性密切相关。在本信函中,据我们所知,我们首次提出了一种新颖的光谱干涉深度分辨光声粘弹性成像(SID-PAVEI)方法,该方法打破了表面粘弹性成像的困境,并以非接触方式实现了内部可见的微观尺度的SID-PAVEI。在这项工作中,我们采用高灵敏度和深度分辨的光谱域低相干干涉测量法(SDLCI)来原位远程跟踪光声诱导的吸收体应变响应。通过解耦光声编码光谱干涉信号的相位和幅度,可以同时获得SID-PAVEI和散射结构成像(SSI)。通过对生物组织成像,展示了一次扫描中SID-PAVEI和SSI的深度分辨性能。该方法为三维微观尺度粘弹性成像开辟了新的前景,并在多参数表征病理信息方面具有巨大潜力。