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Molecular hot electroluminescence due to strongly enhanced spontaneous emission rates in a plasmonic nanocavity

机译:由于强烈的分子热致发光增强自发发射率电浆nanocavity

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摘要

We have recently demonstrated anomalous relaxationless hot electroluminescence from molecules in the tunnel junction of a scanning tunneling microscope [Dong et al., Nat. Photonics, 2010, 4, 50]. In the present paper, based on physically realistic parameters, we aim to unravel the underlying physical mechanism using a multiscale modeling approach that combines classical generalized Mie theory with the quantum master equation. We find that the nanocavity-plasmon-tuned spontaneous emission rate plays a crucial role in shaping the spectral profile. In particular, on resonance, the radiative decay rate can be enhanced by three-to-five orders of magnitude, which enables the radiative process to occur on the lifetime scale of picoseconds and become competitive to the vibrational relaxation. Such a large Purcell effect opens up new emission channels to generate the hot luminescence that arises directly from higher vibronic levels of the molecular excited state. We also stress that the critical role of resonant plasmonic nanocavities in tunneling electron induced molecular luminescence is to enhance the spontaneous radiative decay through plasmon enhanced vacuum fluctuations rather than to generate an efficient plasmon stimulated emission process. This improved understanding has been partly overlooked in previous studies but is believed to be very important for further developments of molecular plasmonics and optoelectronics.
机译:我们最近演示了异常relaxationless热致发光分子隧道结的扫描穿隧显微镜(董et al ., Nat。光子学、2010、4、50)。基于物理现实的参数,我们的目标为了揭开底层物理机制使用多尺度建模方法结合古典广义米氏理论量子主方程。nanocavity-plasmon-tuned自发发射在光谱中扮演着关键角色概要文件。可以增强辐射衰变率三至五个数量级,使辐射过程发生在一生皮秒,成为规模竞争力振动弛豫。生成效应开辟了新的排放通道直接来自热发光电子振动的水平较高的分子激动状态。共振电浆nanocavities隧道电子诱导分子发光通过增强自发辐射衰变等离子体增强而不是真空波动生成一个有效的等离子体刺激发射过程。在先前的研究,但一定程度上被忽视被认为是非常重要的分子等离子和发展光电子学。

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