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Light-matter interaction in the strong coupling regime: configurations, conditions, and applications

机译:件轻松事强耦合的交互政权:配置条件,应用程序

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Resonance interaction between a molecular transition and a confined electromagnetic field can reach the coupling regime where coherent exchange of energy between light and matter becomes reversible. In this case, two new hybrid states separated in energy are formed instead of independent eigenstates, which is known as Rabi splitting. This modification of the energy spectra of the system offers new possibilities for controlled impact on various fundamental properties of coupled matter (such as the rate of chemical reactions and the conductivity of organic semiconductors). To date, the strong coupling regime has been demonstrated in many configurations under different ambient conditions. However, there is still no comprehensive approach to determining parameters for achieving the strong coupling regime for a wide range of practical applications. In this review, a detailed analysis of various systems and corresponding conditions for reaching strong coupling is carried out and their advantages and disadvantages, as well as the prospects for application, are considered. The review also summarizes recent experiments in which the strong coupling regime has led to new interesting results, such as the possibility of collective strong coupling between X-rays and matter excitation in a periodic array of Fe isotopes, which extends the applications of quantum optics; a strong amplification of the Raman scattering signal from a coupled system, which can be used in surface-enhanced and tip-enhanced Raman spectroscopy; and more efficient second-harmonic generation from the low polaritonic state, which is promising for nonlinear optics. The results reviewed demonstrate great potential for further practical applications of strong coupling in the fields of photonics (low-threshold lasers), quantum communications (switches), and biophysics (molecular fingerprinting).
机译:磁共振分子之间的相互作用过渡和限制电磁场可以达到连贯的耦合机制光与物质之间的能量交换成为可逆的。州能源形成的,而不是分离独立态下,它被称为拉比分裂。系统的光谱提供了新的可能性对各种基本控制的影响耦合问题的性质(如的速度化学反应的电导率有机半导体)。耦合机制已被证明在许多配置在不同环境下条件。全面的方法来确定参数实现的强耦合机制广泛的实际应用。回顾,详细分析各种系统和相应的条件达到强劲耦合及其优势和执行缺点,以及前景应用程序中,被认为是。总结了最近的实验中,强者耦合机制导致了新的有趣的结果,比如集体的可能性强烈的x射线与物质之间的耦合激励的周期阵列铁同位素,这扩展了量子光学的应用;强大的拉曼散射的放大信号从一个耦合系统,可以使用在表面增强和tip-enhanced喇曼光谱法;一代从低polaritonic状态,非线性光学的承诺。进一步回顾展示潜力巨大强耦合的实际应用光子学领域(低门槛激光),量子通信(开关),生物物理学(分子指纹)。

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