基于纳米光子相控阵的可植入硅神经探针用于单瓣光束导向

Fu-Der Chen, Ankita Sharma, Tianyuan Xue, Youngho Jung, Alperen Govdeli, Jason C. C. Mak, Homeira Moradi Chameh, Mandana Movahed, Michael G. K. Brunk, Xianshu Luo, Hongyao Chua, Patrick Guo-Qiang Lo, Taufik A. Valiante, Wesley D. Sacher, Joyce K. S. Poon
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摘要

在用光遗传学绘制脑活动图的过程中,模式照明对于目标神经刺激至关重要。然而,由于大脑组织中的光散射,需要发光植入物来给大脑深部区域带来有图案的照明。一个有希望的解决方案是硅神经探针集成纳米光子电路,形成量身定制的光束模式,没有透镜。在这里,我们提出了神经探针与基于光栅的光发射器,产生一个单一的可操纵光束。该发射器针对蓝色或琥珀色光进行了优化,将端射光学相控阵与平板光栅相结合,以抑制高阶副瓣。在小鼠体内的实验表明,光学相控阵为光遗传刺激提供了足够的功率。虽然组织中的光束转向性能揭示了挑战,包括散射引起的光束展宽和更宽的转向范围的需要,但这一概念验证演示说明了实现能够连续单光束扫描的紧凑型光学相控阵的设计原则,为将光学相控阵推进到靶向光遗传刺激奠定了基础。当用光遗传学技术绘制大脑活动时,图案照明对于目标刺激至关重要。研究人员开发了可植入的硅神经探针,形成一个单一的可操纵光束,并在体内演示了该装置在深部脑光遗传刺激方面的潜力
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Implantable silicon neural probes with nanophotonic phased arrays for single-lobe beam steering

Implantable silicon neural probes with nanophotonic phased arrays for single-lobe beam steering
In brain activity mapping with optogenetics, patterned illumination is crucial for targeted neural stimulation. However, due to optical scattering in brain tissue, light-emitting implants are needed to bring patterned illumination to deep brain regions. A promising solution is silicon neural probes with integrated nanophotonic circuits that form tailored beam patterns without lenses. Here we propose neural probes with grating-based light emitters that generate a single steerable beam. The light emitters, optimized for blue or amber light, combine end-fire optical phased arrays with slab gratings to suppress higher-order sidelobes. In vivo experiments in mice demonstrated that the optical phased array provided sufficient power for optogenetic stimulation. While beam steering performance in tissue reveals challenges, including beam broadening from scattering and the need for a wider steering range, this proof-of-concept demonstration illustrates the design principles for realizing compact optical phased arrays capable of continuous single-beam scanning, laying the groundwork for advancing optical phased arrays toward targeted optogenetic stimulation. When mapping brain activity with optogenetic techniques, patterned illumination is critical for targeted stimulation. Here, implantable silicon neural probes forming a single steerable beam are developed and in vivo demonstrations reported the device’s potential for deep brain optogenetic stimulation
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