Li Jun, Qiu Lina, Poon Chien-Sing, Sunar Ulas
Guangdong Provincial Key Laboratory of Optical Information Materials and Technology, National Center for International Research on Green Optoelectronics, MOE International Laboratory for Optical Information Technologies, South China Academy of Advanced Optoelectronics, South China Normal University, Guangzhou, 510006, China.
Department of Biomedical, Industrial and Human Factors Engineering, Wright State University, Dayton, OH 45435, USA.
Biomed Opt Express. 2017 Nov 9;8(12):5518-5532. doi: 10.1364/BOE.8.005518. eCollection 2017 Dec 1.
A novel approach for time-domain diffuse correlation spectroscopy (TD-DCS) has been recently proposed, which has the unique advantage by simultaneous measurements of optical and dynamical properties in a scattering medium. In this study, analytical models for calculating the time-resolved electric-field autocorrelation function is presented for a multi-layer turbid sample, as well as a semi-infinite medium embedded with a small dynamic heterogeneity. To verify the analytical models, we used Monte Carlo simulations, which demonstrated that the theoretical prediction for the time-resolved autocorrelation function was highly consistent with the Monte Carlo simulation, validating the proposed analytical models. Using these analytical models, we also showed that TD-DCS has a higher sensitivity compared to conventional continuous-wave (CW) DCS for detecting the deeper dynamics. The presented analytical models and simulations can be utilized for quantification of optical and dynamical properties from future TD-DCS experimental data as well as for optimization of the experimental design to achieve maximum contrast for deep tissue dynamics.
最近提出了一种用于时域扩散相关光谱(TD-DCS)的新方法,该方法通过同时测量散射介质中的光学和动力学特性具有独特优势。在本研究中,针对多层混浊样品以及嵌入小动态异质性的半无限介质,给出了用于计算时间分辨电场自相关函数的解析模型。为了验证这些解析模型,我们使用了蒙特卡罗模拟,结果表明时间分辨自相关函数的理论预测与蒙特卡罗模拟高度一致,从而验证了所提出的解析模型。使用这些解析模型,我们还表明,与传统连续波(CW)DCS相比,TD-DCS在检测更深层动力学方面具有更高的灵敏度。所给出的解析模型和模拟可用于从未来的TD-DCS实验数据中量化光学和动力学特性,以及用于优化实验设计以实现深部组织动力学的最大对比度。