论文标题

有选择地解决载有量子发射极的纳米腔中的等离子模式和激子状态

Selectively addressing plasmonic modes and excitonic states in a nanocavity hosting a quantum emitter

论文作者

Martín-Jiménez, Alberto, Jover, Óscar, Lauwaet, Koen, Granados, Daniel, Miranda, Rodolfo, Otero, Roberto

论文摘要

了解和控制量子发射极的激发态与纳米腔的等离子模式之间的相互作用是当前最相关的科学挑战之一,是许多应用程序开发的关键,从量子信息处理设备到极化催化剂。 In this paper we demonstrate that the tunnel electroluminescence of C60 nanocrystals enclosed in the plasmonic nanocavity between a metallic surface and the tip of a Scanning Tunnelling Microscope, and isolated from the metal surface by a thin NaCl film, can be switched from a broad emission spectrum, revealing the plasmonic modes of the cavity, to a narrow band emission, displaying only the excitonic states of the C60分子通过更改应用于连接的偏置电压。等离子发射在相同的电压区域,其中非弹性隧道跃迁速率很大,因此对于大电压而消失。另一方面,激发子发射主导了非弹性速率低的高压区域的光谱,这表明激子不能通过非弹性隧道过程产生。这些结果指出了解释量子发射器的隧道电致电的新机制,并提供了开发可调纳米级光源的新途径。

Understanding and controlling the interaction between the excitonic states of a quantum emitter and the plasmonic modes of a nanocavity is one of the most relevant current scientific challenges, key for the development of many applications, from quantum information processing devices to polaritonic catalysts. In this paper we demonstrate that the tunnel electroluminescence of C60 nanocrystals enclosed in the plasmonic nanocavity between a metallic surface and the tip of a Scanning Tunnelling Microscope, and isolated from the metal surface by a thin NaCl film, can be switched from a broad emission spectrum, revealing the plasmonic modes of the cavity, to a narrow band emission, displaying only the excitonic states of the C60 molecules by changing the bias voltage applied to the junction. Plasmonic emission is found in the same voltage region in which the rate of inelastic tunnel transitions is large and, thus, vanishes for large voltages. Excitonic emission, on the other hand, dominates the spectra in the high-voltage region in which the inelastic rate is low, demonstrating that the excitons cannot be created by an inelastic tunnel process. These results point towards new possible mechanisms to explain the tunnel electroluminescence of quantum emitters and offer new avenues to develop electrically tuneable nanoscale light sources.

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