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可见光光谱范围内的低损耗有机双曲线材料:联合实验与第一性原理研究

Low-Loss Organic Hyperbolic Materials in the Visible Spectral Range: A Joint Experimental and First-Principles Study.

作者信息

Lee Yeon Ui, Yim Kanghoon, Bopp Steven Edward, Zhao Junxiang, Liu Zhaowei

机构信息

Department of Electrical and Computer Engineering, University of California, 9500 Gilman Drive, La Jolla, San Diego, CA, 92093, USA.

Platform Technology Laboratory, Korea Institute of Energy Research, 152 Gajeong-ro, Yuseong-gu, Daejeon, 34129, Republic of Korea.

出版信息

Adv Mater. 2020 Jul;32(28):e2002387. doi: 10.1002/adma.202002387. Epub 2020 Jun 3.

Abstract

Hyperbolic media strengthen numerous attractive applications in optics such as super-resolution imaging, enhanced spontaneous emission, and nanoscale waveguiding. Natural hyperbolic materials exist at visible frequencies; however, implementations of these materials suffer substantial compromises resulting from the high loss in the currently available candidates. Here, the first experimental and theoretical investigation of regioregular poly(3-alkylthiophenes) (rr-P3ATs), a naturally low-loss organic hyperbolic material (OHM) in the visible frequency range, is shown. These hyperbolic properties arise from a highly ordered structure of layered electron-rich conjugated thiophene ring backbones separated by insulating alkyl side chains. The optical and electronic properties of the rr-P3AT can be tuned by controlling the degree of crystallinity and alkyl side chain length. First-principles calculations support the experimental observations, which result from the rr-P3AT's structural and optical anisotropy. Conveniently, rr-P3AT-based OHMs are facile to fabricate, flexible, and biocompatible, which may lead to tremendous new opportunities in a wide range of applications.

摘要

双曲线介质增强了光学领域众多引人注目的应用,如超分辨率成像、增强自发发射和纳米级波导。天然双曲线材料存在于可见光频率范围;然而,这些材料的应用因目前可用候选材料的高损耗而受到很大影响。本文展示了对区域规整聚(3-烷基噻吩)(rr-P3ATs)的首次实验和理论研究,rr-P3ATs是一种在可见光频率范围内天然低损耗的有机双曲线材料(OHM)。这些双曲线特性源于由绝缘烷基侧链分隔的富含电子的共轭噻吩环主链的高度有序结构。rr-P3AT的光学和电子特性可通过控制结晶度和烷基侧链长度来调节。第一性原理计算支持了实验观察结果,这是由rr-P3AT的结构和光学各向异性导致的。方便的是,基于rr-P3AT的OHM易于制造、具有柔韧性且具有生物相容性,这可能在广泛的应用中带来巨大的新机遇。

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