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连续波频率上转换与分子光机械纳米腔。

Continuous-wave frequency upconversion with a molecular optomechanical nanocavity.

机构信息

Institute of Physics, Ecole Polytechnique Fédérale de Lausanne (EPFL), CH-1015 Lausanne, Switzerland.

Hubei Key Laboratory of Optical Information and Pattern Recognition, Wuhan Institute of Technology, Wuhan 430205, China.

出版信息

Science. 2021 Dec 3;374(6572):1264-1267. doi: 10.1126/science.abk3106. Epub 2021 Dec 2.

Abstract

Coherent upconversion of terahertz and mid-infrared signals into visible light opens new horizons for spectroscopy, imaging, and sensing but represents a challenge for conventional nonlinear optics. Here, we used a plasmonic nanocavity hosting a few hundred molecules to demonstrate optomechanical transduction of submicrowatt continuous-wave signals from the mid-infrared (32 terahertz) onto the visible domain at ambient conditions. The incoming field resonantly drives a collective molecular vibration, which imprints a coherent modulation on a visible pump laser and results in upconverted Raman sidebands with subnatural linewidth. Our dual-band nanocavity offers an estimated 13 orders of magnitude enhancement in upconversion efficiency per molecule. Our results demonstrate that molecular cavity optomechanics is a flexible paradigm for frequency conversion leveraging tailorable molecular and plasmonic properties.

摘要

太赫兹和中红外信号相干上转换为可见光为光谱学、成像和传感开辟了新的视野,但这对传统的非线性光学来说是一个挑战。在这里,我们使用一个等离子体纳米腔来容纳几百个分子,在环境条件下将亚毫瓦连续波的中红外(32 太赫兹)信号的光机械转换为可见光域。入射场共振驱动集体分子振动,在可见泵浦激光上产生相干调制,并导致上转换拉曼边带具有亚自然线宽。我们的双频纳米腔为每个分子提供了估计高达 13 个数量级的上转换效率增强。我们的结果表明,分子腔光机械学是一种灵活的频率转换范例,可以利用可定制的分子和等离子体特性。

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