Pisano Filippo, Pisanello Marco, Sileo Leonardo, Qualtieri Antonio, Sabatini Bernardo L, De Vittorio Massimo, Pisanello Ferruccio
Istituto Italiano di Tecnologia, Center for Biomolecular Nanotechnologies, 73010, Arnesano, Lecce, Italy.
Dipartimento di Ingegneria dell'Innovazione, Università del Salento, 73100 Lecce, Italy.
Microelectron Eng. 2019 May 29;195:41-49. doi: 10.1016/j.mee.2018.03.023. Epub 2018 Mar 28.
With the advent of optogenetic techniques, a major need for precise and versatile light-delivery techniques has arisen from the neuroscience community. Driven by this demand, research on innovative illuminating devices has opened previously inaccessible experimental paths. However, tailoring light delivery to functionally and anatomically diverse brain structures still remains a challenging task. We progressed in this endeavor by micro-structuring metal-coated tapered optical fibers and exploiting the resulting mode-division multiplexing/demultiplexing properties. To do this, a non-conventional Focused Ion Beam (FIB) milling method was developed in order to pattern the non-planar surface of the taper around the full 360°, by equipping the FIB chamber with a micromanipulation system. This led us to develop three novel typologies of micro-structured illuminating tools: a tapered fiber that emits light from a narrow slot of adjustable length; a tapered fiber that emits light from four independently addressable optical windows; a tapered fiber that emits light from an annular aperture with 360° symmetry. The result is a versatile technology enabling reconfigurable light-delivery that can be tailored to specific experimental needs.
随着光遗传学技术的出现,神经科学界对精确且通用的光传输技术产生了重大需求。受此需求驱动,对创新照明设备的研究开辟了以前无法进入的实验路径。然而,将光传输定制到功能和解剖结构各异的脑区仍然是一项具有挑战性的任务。我们通过对金属涂层锥形光纤进行微结构化,并利用由此产生的模式分割复用/解复用特性,在这一努力中取得了进展。为此,开发了一种非常规的聚焦离子束(FIB)铣削方法,通过为FIB腔配备微操纵系统,在360°范围内对锥形光纤的非平面表面进行图案化。这使我们开发出了三种新型的微结构化照明工具:一种从长度可调的窄槽发射光的锥形光纤;一种从四个可独立寻址的光学窗口发射光的锥形光纤;一种从具有360°对称性的环形孔径发射光的锥形光纤。结果是一种通用技术,可实现可重新配置的光传输,能够根据特定实验需求进行定制。