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量子纳米光子学的最新进展:复合激子与振动极化激元的强耦合及其生物医学和化学应用

Recent advances in quantum nanophotonics: plexcitonic and vibro-polaritonic strong coupling and its biomedical and chemical applications.

作者信息

Kim Yangkyu, Barulin Aleksandr, Kim Sangwon, Lee Luke P, Kim Inki

机构信息

Department of Biophysics, Institute of Quantum Biophysics, Sungkyunkwan University, Suwon 16419, Republic of Korea.

and Department of Intelligent Precision Healthcare Convergence, Sungkyunkwan University, Suwon 16419, Republic of Korea.

出版信息

Nanophotonics. 2022 Nov 11;12(3):413-439. doi: 10.1515/nanoph-2022-0542. eCollection 2023 Feb.

Abstract

The fundamental understanding of molecular quantum electrodynamics via the strong light-matter interactions between a nanophotonic cavity and quantum emitters opens various applications in quantum biology, biophysics, and chemistry. However, considerable obstacles to obtaining a clear understanding of coupling mechanisms via reliable experimental quantifications remain to be resolved before this field can truly blossom toward practical applications in quantitative life science and photochemistry. Here, we provide recent advancements of state-of-the-art demonstrations in plexcitonic and vibro-polaritonic strong couplings and their applications. We highlight recent studies on various strong coupling systems for altering chemical reaction landscapes. Then, we discuss reports dedicated to the utilization of strong coupling methods for biomolecular sensing, protein functioning studies, and the generation of hybrid light-matter states inside living cells. The strong coupling regime provides a tool for investigating and altering coherent quantum processes in natural biological processes. We also provide an overview of new findings and future avenues of quantum biology and biochemistry.

摘要

通过纳米光子腔与量子发射体之间的强光-物质相互作用对分子量子电动力学的基本理解,开启了量子生物学、生物物理学和化学中的各种应用。然而,在该领域能够真正朝着定量生命科学和光化学的实际应用蓬勃发展之前,通过可靠的实验量化来清晰理解耦合机制仍存在相当大的障碍有待解决。在此,我们介绍了plexcitonic和振动极化子强耦合方面最先进演示的最新进展及其应用。我们重点介绍了关于改变化学反应态势的各种强耦合系统的近期研究。然后,我们讨论了致力于利用强耦合方法进行生物分子传感、蛋白质功能研究以及在活细胞内产生混合光-物质态的报告。强耦合机制为研究和改变自然生物过程中的相干量子过程提供了一种工具。我们还概述了量子生物学和生物化学的新发现以及未来的发展方向。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8743/11501129/b2bbf1c6e94d/j_nanoph-2022-0542_fig_001.jpg

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