Di Sieno Laura, Nissinen Jan, Hallman Lauri, Martinenghi Edoardo, Contini Davide, Pifferi Antonio, Kostamovaara Juha, Mora Alberto Dalla
Politecnico di Milano, Dipartimento di Fisica, Milan, Italy.
University of Oulu, Circuits and Systems Research Unit, Oulu, Finland.
J Biomed Opt. 2017 Aug;22(8):1-9. doi: 10.1117/1.JBO.22.8.085004.
We validate a miniaturized pulsed laser source for use in time-domain (TD) diffuse optics, following rigorous and shared protocols for performance assessment of this class of devices. This compact source (12×6 mm2) has been previously developed for range finding applications and is able to provide short, high energy (∼100 ps, ∼0.5 nJ) optical pulses at up to 1 MHz repetition rate. Here, we start with a basic level laser characterization with an analysis of suitability of this laser for the diffuse optics application. Then, we present a TD optical system using this source and its performances in both recovering optical properties of tissue-mimicking homogeneous phantoms and in detecting localized absorption perturbations. Finally, as a proof of concept of in vivo application, we demonstrate that the system is able to detect hemodynamic changes occurring in the arm of healthy volunteers during a venous occlusion. Squeezing the laser source in a small footprint removes a key technological bottleneck that has hampered so far the realization of a miniaturized TD diffuse optics system, able to compete with already assessed continuous-wave devices in terms of size and cost, but with wider performance potentialities, as demonstrated by research over the last two decades.
我们按照严格且通用的此类设备性能评估协议,验证了一种用于时域(TD)漫射光学的小型脉冲激光源。这种紧凑型光源(12×6 mm²)此前是为测距应用而开发的,能够以高达1兆赫兹的重复频率提供短的、高能量(约100 皮秒,约0.5 纳焦)的光脉冲。在此,我们从对该激光源进行基本的激光特性表征开始,分析其是否适用于漫射光学应用。然后,我们展示了一个使用该光源的时域光学系统,以及它在恢复仿组织均匀体模的光学特性和检测局部吸收扰动方面的性能。最后,作为体内应用概念验证,我们证明该系统能够检测健康志愿者手臂在静脉阻塞期间发生的血液动力学变化。将激光源小型化消除了一个关键技术瓶颈,该瓶颈迄今为止阻碍了小型化时域漫射光学系统的实现,这种小型化系统在尺寸和成本方面能够与已评估的连续波设备竞争,而且具有更广泛的性能潜力,过去二十年的研究已证明了这一点。