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Light from van der Waals quantum tunneling devices

机译:范德华量子隧穿装置发出的光

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摘要

The understanding of and control over light emission from quantum tunneling has challenged researchers for more than four decades due to the intricate interplay of electrical and optical properties in atomic scale volumes. Here we introduce a device architecture that allows for the disentanglement of electronic and photonic pathways—van der Waals quantum tunneling devices. The electronic properties are defined by a stack of two-dimensional atomic crystals whereas the optical properties are controlled via an external photonic architecture. In van der Waals heterostructures made of gold, hexagonal boron nitride and graphene we find that inelastic tunneling results in the emission of photons and surface plasmon polaritons. By coupling these heterostructures to optical nanocube antennas we achieve resonant enhancement of the photon emission rate in narrow frequency bands by four orders of magnitude. Our results lead the way towards a new generation of nanophotonic devices that are driven by quantum tunneling.
机译:由于原子尺度体积中电学和光学特性的错综复杂的相互作用,对量子隧穿光的理解和控制已经挑战了研究人员四十多年。在这里,我们介绍一种设备架构,该架构允许电子和光子路径的纠缠-Van der Waals量子隧穿设备。电子性质是由一堆二维原子晶体定义的,而光学性质是通过外部光子结构控制的。在由金,六角形氮化硼和石墨烯制成的范德华异质结构中,我们发现非弹性隧穿会导致光子和表面等离激元极化子的发射。通过将这些异质结构耦合到光学纳米立方体天线,我们实现了在窄频带中将光子发射速率共振增强了四个数量级。我们的结果引领了由量子隧穿驱动的新一代纳米光子器件的发展。

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