论文标题
通过使用环谐振器,用于同时读数和被动光定位的小脚印光电极
Small footprint optoelectrodes for simultaneous readout and passive light localization by the use of ring resonators
论文作者
论文摘要
神经探针是在体内侵入性的装置,它们结合了电生理学和光遗传学,以深入了解大脑的工作方式,直到单个神经元及其网络活性。它们的刺激位点和传感器的整合允许以高时空分辨率记录和操纵神经元活动。最先进的探针受其横向尺寸,传感器数量和选择性访问独立刺激位点的能力之间的权衡限制。在这里,我们意识到了一个高度可扩展的探针,该探针具有三维的传感器和纳米光电电路的三维整合,并通过一个数量级来使每个横截面的传感器密度相对于最先进的设备。我们首次通过仅将一个波导与众多光学环谐振器耦合为被动纳米光子开关来克服纳米光电路的空间极限。通过我们的策略,我们实现了准确的按需灯光定位,同时避免了空间苛刻的波导束,并证明了概念验证设备的可行性及其额外的可扩展性,朝着高分辨率和较低的破坏性神经光电极。
Neural probes are in vivo invasive devices that combine electrophysiology and optogenetics to gain insight into how the brain operates, down to the single neuron and its network activity. Their integration of stimulation sites and sensors allows for recording and manipulating neurons` activity with a high spatiotemporal resolution. State of the art probes are limited by tradeoffs between their lateral dimension, the number of sensors, and the ability to selectively access independent stimulation sites. Here, we realize a highly scalable probe that features a three-dimensional integration of small footprint arrays of sensors and nanophotonic circuits and scales the density of sensors per cross-section by one order of magnitude with respect to state of the art devices. For the first time, we overcome the spatial limit of the nanophotonic circuit by coupling only one waveguide to numerous optical ring resonators as passive nanophotonic switches. With our strategy, we achieve accurate on-demand light localization while avoiding spatial demanding bundles of waveguides and demonstrate the feasibility of a proof of concept device and its additional scalability, towards high resolution and low damaging neural optoelectrodes.