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Reconfigurable exciton-plasmon interconversion for nanophotonic circuits

机译:纳米光子电路的可重构激子-等离子体激元互变

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摘要

The recent challenges for improving the operation speed of nanoelectronics have motivated research on manipulating light in on-chip integrated circuits. Hybrid plasmonic waveguides with low-dimensional semiconductors, including quantum dots and quantum wells, are a promising platform for realizing sub-diffraction limited optical components. Meanwhile, two-dimensional transition metal dichalcogenides (TMDs) have received broad interest in optoelectronics owing to tightly bound excitons at room temperature, strong light-matter and exciton-plasmon interactions, available top-down wafer-scale integration, and band-gap tunability. Here, we demonstrate principal functionalities for on-chip optical communications via reconfigurable exciton-plasmon interconversions in ∼200-nm-diameter Ag-nanowires overlapping onto TMD transistors. By varying device configurations for each operation purpose, three active components for optical communications are realized: field-effect exciton transistors with a channel length of ∼32 μm, field-effect exciton multiplexers transmitting multiple signals through a single NW and electrical detectors of propagating plasmons with a high On/Off ratio of∼190. Our results illustrate the unique merits of two-dimensional semiconductors for constructing reconfigurable device architectures in integrated nanophotonic circuits.
机译:在提高纳米电子学的操作速度方面,最近的挑战激发了对在片上集成电路中操纵光的研究。具有低维半导体(包括量子点和量子阱)的混合等离子体激元波导是实现亚衍射受限光学组件的有前途的平台。同时,由于室温下的激子紧密结合,强光子和激子-等离激元相互作用,自上而下的晶圆级集成以及带隙可调性,二维过渡金属二硫化碳(TMD)在光电子领域受到广泛关注。 。在这里,我们展示了通过可重配置的激子-等离激元互转换在直径200 nm的Ag-纳米线与TMD晶体管重叠时进行片上光通信的主要功能。通过针对每种操作目的改变设备配置,实现了三个用于光通信的有源组件:沟道长度为〜32μm的场效应激子晶体管,通过单个NW传输多个信号的场效应激子多路复用器和传播等离子体激元的电探测器开/关比高达190。我们的结果说明了二维半导体在集成纳米光子电路中构建可重构设备体系结构的独特优势。

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