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超薄膜中的角动量纳米计量学。

Angular-momentum nanometrology in an ultrathin plasmonic topological insulator film.

机构信息

Laboratory of Artificial-Intelligence Nanophotonics, School of Science, RMIT University, Melbourne, Victoria, 3001, Australia.

Centre for Ultrahigh-bandwidth Devices for Optical Systems (CUDOS), School of Science, RMIT University, Melbourne, Victoria, 3001, Australia.

出版信息

Nat Commun. 2018 Oct 24;9(1):4413. doi: 10.1038/s41467-018-06952-1.

Abstract

Complementary metal-oxide-semiconductor (CMOS) technology has provided a highly sensitive detection platform for high-resolution optical imaging, sensing and metrology. Although the detection of optical beams carrying angular momentum have been explored with nanophotonic methods, the metrology of optical angular momentum has been limited to bulk optics. We demonstrate angular-momentum nanometrology through the spatial displacement engineering of plasmonic angular momentum modes in a CMOS-compatible plasmonic topological insulator material. The generation and propagation of surface plasmon polaritons on the surface of an ultrathin topological insulator SbTe film with a thickness of 100 nm is confirmed, exhibiting plasmonic figures of merit superior to noble metal plasmonics in the ultraviolet-visible frequency range. Angular-momentum nanometrology with a low crosstalk of less than -20 dB is achieved. This compact high-precision angular-momentum nanometrology opens an unprecedented opportunity for on-chip manipulation of optical angular momentum for high-capacity information processing, ultrasensitive molecular sensing, and ultracompact multi-functional optoelectronic devices.

摘要

互补金属氧化物半导体(CMOS)技术为高分辨率光学成像、传感和计量提供了高度灵敏的检测平台。尽管已经使用纳米光子学方法探索了携带角动量的光束的检测,但光学角动量的计量仅限于体光学。我们通过在与 CMOS 兼容的等离子体拓扑绝缘体材料中对等离子体角动量模式的空间位移工程来实现角动量纳米计量。在厚度为 100nm 的超薄拓扑绝缘体 SbTe 薄膜的表面上证实了表面等离激元极化激元的产生和传播,其在紫外-可见频率范围内表现出优于贵金属等离子体的等离子体优值。实现了低串扰小于-20dB 的角动量纳米计量。这种紧凑的高精度角动量纳米计量为在片上操纵光学角动量以实现高容量信息处理、超高灵敏度分子传感和超紧凑多功能光电设备提供了前所未有的机会。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6d24/6200795/cbde4bc45eca/41467_2018_6952_Fig1_HTML.jpg

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