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通过微腔工程化等离子体共振增强相干光与物质的相互作用。

Enhancing Coherent Light-Matter Interactions through Microcavity-Engineered Plasmonic Resonances.

作者信息

Peng Pai, Liu Yong-Chun, Xu Da, Cao Qi-Tao, Lu Guowei, Gong Qihuang, Xiao Yun-Feng

机构信息

State Key Laboratory for Mesoscopic Physics and School of Physics, Peking University; Collaborative Innovation Center of Quantum Matter, Beijing 100871, People's Republic of China.

State Key Laboratory of Low-Dimensional Quantum Physics and Department of Physics, Tsinghua Univeristy, Beijing 100084, People's Republic of China.

出版信息

Phys Rev Lett. 2017 Dec 8;119(23):233901. doi: 10.1103/PhysRevLett.119.233901. Epub 2017 Dec 4.

Abstract

Quantum manipulation is challenging in localized-surface plasmon resonances (LSPRs) due to strong dissipations. To enhance quantum coherence, here we propose to engineer the electromagnetic environment of LSPRs by placing metallic nanoparticles (MNPs) in optical microcavities. An analytical quantum model is first built to describe the LSPR-microcavity interaction, revealing the significantly enhanced coherent radiation and the reduced incoherent dissipation. Furthermore, when a quantum emitter interacts with the LSPRs in the cavity-engineered environment, its quantum yield is enhanced over 40 times and the radiative power over one order of magnitude, compared to those in the vacuum environment. Importantly, the cavity-engineered MNP-emitter system can enter the strong coupling regime of cavity quantum electrodynamics, providing a promising platform for the study of quantum plasmonics, quantum information processing, precise sensing, and spectroscopy.

摘要

由于存在强烈的耗散,在局域表面等离子体共振(LSPRs)中进行量子操控具有挑战性。为了增强量子相干性,我们在此提出通过将金属纳米粒子(MNPs)置于光学微腔中来设计LSPRs的电磁环境。首先建立了一个解析量子模型来描述LSPR与微腔的相互作用,揭示了相干辐射的显著增强和非相干耗散的减少。此外,当一个量子发射体与腔工程环境中的LSPRs相互作用时,与在真空环境中相比,其量子产率提高了40倍以上,辐射功率提高了一个数量级。重要的是,腔工程化的MNP-发射体系统可以进入腔量子电动力学的强耦合 regime,为量子等离子体学、量子信息处理、精确传感和光谱学的研究提供了一个有前景的平台。

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