首页> 外文期刊>IEEE Transactions on Biomedical Engineering >A Wireless Head-Mountable Device With Tapered Optical Fiber-Coupled Laser Diode for Light Delivery in Deep Brain Regions
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A Wireless Head-Mountable Device With Tapered Optical Fiber-Coupled Laser Diode for Light Delivery in Deep Brain Regions

机译:具有锥形光纤耦合激光二极管的无线头戴式设备,可在大脑深部区域传输光。

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摘要

Optogenetics sets new experimental paradigms that can reveal cell type-specific contributions on the neural basis of behavior. Since most of the available systems for this purpose are based on approaches that tether animals to a set of cables, recent research activities have been focused on minimizing external factors that can alter animal movements. Current wireless optogenetic systems are based on waveguide-coupled light-emitting diodes (LED) and implanted mu LEDs. However, each configuration separately suffers from significant limitations, such as low coupling efficiency, penetration depth, and invasiveness of waveguide-coupled LED, and local heat generated by implanted mu LEDs. This work presents a novel wireless head-mountable stimulating system for a wide-volume light delivery. The device couples the output of a semiconductor laser diode (LD) to a tapered optical fiber (TF) on a wireless platform. The LD-TF coupling was engineered by setting up far-field analysis, which allows a full exploitation of mode division demultiplexing properties of TFs. The output delivered light along the tapered segment is capable of stimulating structures of depths up to similar to 2 mm. TFs are tapered to a gradual taper angle (Psi similar to 2 degrees to Psi similar to 10 degrees) that ends with a sharp tip (similar to 500 nm) for smooth insertion and less invasiveness. Thus, the proposed system extends the capabilities of wireless optogenetic by offering a novel solution for wide volume light delivery in deep brain regions.
机译:光遗传学建立了新的实验范式,可以在行为的神经基础上揭示细胞类型的特定贡献。由于用于此目的的大多数可用系统都是基于将动物束缚于一组电缆的方法,因此,最近的研究活动集中在最小化可以改变动物运动的外部因素上。当前的无线光遗传学系统基于波导耦合的发光二极管(LED)和植入的mu LED。但是,每种配置都分别受到明显的限制,例如耦合效率低,穿透深度和波导耦合LED的侵入性以及植入的mu LED产生的局部热量。这项工作提出了一种新颖的无线头戴式刺激系统,用于大剂量的光传输。该设备将半导体激光二极管(LD)的输出耦合到无线平台上的锥形光纤(TF)。 LD-TF耦合是通过设置远场分析来设计的,从而可以充分利用TF的模式划分多路分解特性。沿着锥形段输出的输出光能够刺激深度高达2 mm的结构。 TF逐渐变细为逐渐变细的锥角(Psi近似于2度,Psi近似于10度),并以尖锐的尖端(近似于500 nm)结束,以实现平滑的插入和较低的侵入性。因此,所提出的系统通过提供用于在深脑区域中的大体积光传输的新颖解决方案,扩展了无线光遗传学的能力。

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