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多功能磷酸银玻璃和聚合物基光纤的光电特性。

Optical and electrical characterizations of multifunctional silver phosphate glass and polymer-based optical fibers.

机构信息

Department of Chemistry, Université Laval, 1045, av. de la Médecine, Quebec, QC, G1V 0A6, Canada.

Center for Optics, Photonics and Lasers (COPL), Université Laval, 2375, rue de la Terrasse, Quebec, QC, G1V 0A6 Canada.

出版信息

Sci Rep. 2017 Mar 3;7:43917. doi: 10.1038/srep43917.

Abstract

In recent years, the fabrication of multifunctional fibers has expanded for multiple applications that require the transmission of both light and electricity. Fibers featuring these two properties are usually composed either of a single material that supports the different characteristics or of a combination of different materials. In this work, we fabricated (i) novel single-core step-index optical fibers made of electrically conductive AgI-AgPO-WO glass and (ii) novel multimaterial fibers with different designs made of AgI-AgPO-WO glass and optically transparent polycarbonate and poly (methyl methacrylate) polymers. The multifunctional fibers produced show light transmission over a wide range of wavelengths from 500 to 1000 nm for the single-core fibers and from 400 to 1000 nm for the multimaterial fibers. Furthermore, these fibers showed excellent electrical conductivity with values ranging between 10 and 10 S·cm at room temperature within the range of AC frequencies from 1 Hz to 1 MHz. Multimodal taper-tipped fibre microprobes were then fabricated and were characterized. This advanced design could provide promising tools for in vivo electrophysiological experiments that require light delivery through an optical core in addition to neuronal activity recording.

摘要

近年来,多功能纤维的制造技术得到了扩展,可应用于多种需要同时传输光和电的领域。具有这两种特性的纤维通常由支持不同特性的单一材料组成,或者由不同材料的组合组成。在这项工作中,我们制造了(i)由导电 AgI-AgPO-WO 玻璃制成的新型单芯阶跃折射率光纤,以及(ii)由 AgI-AgPO-WO 玻璃和光学透明聚碳酸酯及聚甲基丙烯酸甲酯聚合物制成的具有不同设计的新型多材料纤维。所制备的多功能纤维在单芯纤维中表现出从 500 到 1000nm 的宽波长范围内的光传输,在多材料纤维中表现出从 400 到 1000nm 的光传输。此外,这些纤维在室温下的交流频率范围为 1Hz 至 1MHz 时表现出优异的导电性,其值在 10 到 10S·cm 之间。然后制造了多模尖端光纤微探针,并对其进行了表征。这种先进的设计可以为需要通过光学芯部传输光以及记录神经元活动的体内电生理实验提供有前途的工具。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5cca/5335562/0b273f05bca7/srep43917-f1.jpg

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