Enhanced quantum coherence of plasmonic resonances with a chiral exceptional points

IF 5.4 1区 物理与天体物理 Q1 PHYSICS, MULTIDISCIPLINARY Communications Physics Pub Date : 2024-05-22 DOI:10.1038/s42005-024-01655-0
Yu-Wei Lu, Jing-Feng Liu, Renming Liu, Hao-Xiang Jiang
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Abstract

While strategies to enhance the quantum coherence of plasmonic resonances have attracted a lot of attention in the past, the advent of non-Hermitian optics carries promising possibilities in this direction, mostly of which are still unexplored. In this work, we show that the quantum coherence of plasmonic resonances can be enhanced by integrating a plasmonic antenna in a photonic cavity operated at a chiral exceptional point (CEP), where the phase of light offers an additional degree of freedom for flexibly manipulating the quantum dynamics. The few-mode quantization theory is employed to demonstrate the advantages and related quantum-optics applications of the proposed hybrid cavity in both off- and on-resonance plasmon-photon coupling. For the former case, the local density of states evolves into sub-Lorentzian lineshape, resulting in reduced dissipation of polaritonic states. On resonance, we identify two mechanisms improving the quantum yield by two orders of magnitude at room temperature: the reduction of plasmonic absorption through Fano interference and the enhancement of cavity radiation through superscattering. Our results establish CEP-engineered plasmonic resonances as a promising platform for controlling quantum states and building high-performance quantum devices. The advent of non-Hermitian optics carries new possibilities in manipulating optical response, offering alternative ways to enhance the quantum coherence of plasmonic resonances. Based on a theoretical model, the authors calculate a quantum yield enhanced by two orders of magnitude at room temperature, achieved by integration of a plasmonic antenna in a photonic cavity operated at a chiral exceptional point.

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利用手性例外点增强等离子共振的量子相干性
过去,增强等离子体共振量子相干性的策略吸引了大量关注,而非赫米提光学的出现则为这一方向带来了充满希望的可能性,其中大部分仍有待探索。在这项工作中,我们展示了通过在手性例外点(CEP)工作的光子腔中集成一个等离子体天线,可以增强等离子体共振的量子相干性,其中光的相位为灵活操纵量子动力学提供了额外的自由度。我们利用少模量子化理论证明了所提出的混合腔在非共振和共振质子光子耦合中的优势和相关量子光学应用。在前一种情况下,局部态密度演变为亚洛伦兹线形,从而减少了极化态的耗散。在共振时,我们发现两种机制可将室温下的量子产率提高两个数量级:通过法诺干涉减少质子吸收,以及通过超散射增强空腔辐射。我们的研究结果使 CEP 工程质子共振成为控制量子态和构建高性能量子器件的一个前景广阔的平台。非赫米提光学的出现为操纵光学响应带来了新的可能性,为增强质子共振的量子相干性提供了新的途径。根据理论模型,作者计算出在室温下,通过将等离子天线集成到在手性例外点工作的光子腔中,量子产率可提高两个数量级。
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来源期刊
Communications Physics
Communications Physics Physics and Astronomy-General Physics and Astronomy
CiteScore
8.40
自引率
3.60%
发文量
276
审稿时长
13 weeks
期刊介绍: Communications Physics is an open access journal from Nature Research publishing high-quality research, reviews and commentary in all areas of the physical sciences. Research papers published by the journal represent significant advances bringing new insight to a specialized area of research in physics. We also aim to provide a community forum for issues of importance to all physicists, regardless of sub-discipline. The scope of the journal covers all areas of experimental, applied, fundamental, and interdisciplinary physical sciences. Primary research published in Communications Physics includes novel experimental results, new techniques or computational methods that may influence the work of others in the sub-discipline. We also consider submissions from adjacent research fields where the central advance of the study is of interest to physicists, for example material sciences, physical chemistry and technologies.
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