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Modal demultiplexing properties of tapered and nanostructured optical fibers for in vivo optogenetic control of neural activity

机译:锥形和纳米结构光纤的模态解复用特性,用于神经活动的体内光遗传学控制

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Optogenetic approaches to manipulate neural activity have revolutionized the ability of neuroscientists to uncover the functional connectivity underlying brain function. At the same time, the increasing complexity of in vivo optogenetic experiments has increased the demand for new techniques to precisely deliver light into the brain, in particular to illuminate selected portions of the neural tissue. Tapered and nanopatterned gold-coated optical fibers were recently proposed as minimally invasive multipoint light delivery devices, allowing for site-selective optogenetic stimulation in the mammalian brain [Pisanello et al., Neuron 82, 1245 (2014)]. Here we demonstrate that the working principle behind these devices is based on the mode-selective photonic properties of the fiber taper. Using analytical and ray tracing models we model the finite conductance of the metal coating, and show that single or multiple optical windows located at specific taper sections can outcouple only specific subsets of guided modes injected into the fiber.
机译:操纵神经活动的光遗传学方法彻底改变了神经科学家发现大脑功能的功能连通性的能力。同时,体内光遗传学实验的日益复杂性增加了对新技术的需求,这些新技术需要将光精确地传递到大脑中,特别是照亮神经组织的选定部分。最近提出了锥形和纳米图案的镀金光纤作为微创多点光传输设备,可在哺乳动物大脑中进行定点光遗传学刺激[Pisanello等人,Neuron 82,1245(2014)]。在这里,我们证明了这些设备的工作原理是基于光纤锥的模式选择光子特性。使用分析和射线追踪模型,我们可以对金属涂层的有限电导率进行建模,并表明位于特定锥度部分的单个或多个光学窗口只能耦合注入到光纤中的特定模式的引导子。

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