Nevlacsil Stefan, Muellner Paul, Maese-Novo Alejandro, Eggeling Moritz, Vogelbacher Florian, Sagmeister Martin, Kraft Jochen, Rank Elisabet, Drexler Wolfgang, Hainberger Rainer
Opt Express. 2020 Oct 26;28(22):32468-32482. doi: 10.1364/OE.404588.
In this paper, we present a novel concept for a multi-channel swept source optical coherence tomography (OCT) system based on photonic integrated circuits (PICs). At the core of this concept is a low-loss polarization dependent path routing approach allowing for lower excess loss compared to previously shown PIC-based OCT systems, facilitating a parallelization of measurement units. As a proof of concept for the low-loss path routing, a silicon nitride PIC-based single-channel swept source OCT system operating at 840 nm was implemented and used to acquire in-vivo tomograms of a human retina. The fabrication of the PIC was done via CMOS-compatible plasma-enhanced chemical vapor deposition to allow future monolithic co-integration with photodiodes and read-out electronics. A performance analysis using the results of the implemented photonic building blocks shows a potential tenfold increase of the acquisition speed for a multi-channel system compared to an ideal lossless single-channel system with the same signal-to-noise ratio.
在本文中,我们提出了一种基于光子集成电路(PIC)的多通道扫频光源光学相干断层扫描(OCT)系统的新颖概念。该概念的核心是一种低损耗的偏振相关路径路由方法,与先前展示的基于PIC的OCT系统相比,它具有更低的额外损耗,有助于测量单元的并行化。作为低损耗路径路由概念验证,实现了一个基于氮化硅PIC的单通道扫频光源OCT系统,其工作波长为840 nm,并用于获取人视网膜的体内断层图像。PIC的制造通过与CMOS兼容的等离子体增强化学气相沉积完成,以便未来与光电二极管和读出电子器件进行单片共集成。使用所实现的光子组件的结果进行的性能分析表明,与具有相同信噪比的理想无损单通道系统相比,多通道系统的采集速度可能提高十倍。