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Strong plasmon-molecule coupling at the nanoscale revealed by first-principles modeling

机译:在纳米载体上耦合的强血浆分子耦合,通过第一原理造型展示

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摘要

Strong light-matter interactions in both the single-emitter and collective strong coupling regimes attract significant attention due to emerging applications in?quantum and nonlinear optics as well as opportunities for modifying material-related properties. Exploration of these phenomena is theoretically demanding, as polaritons exist at the intersection between quantum optics, solid state physics, and quantum chemistry. Fortunately, nanoscale polaritons can be realized in small plasmon-molecule systems, enabling treatment with ab initio methods. Here, we show that time-dependent density-functional theory calculations access the physics of nanoscale plasmon-molecule hybrids and predict vacuum Rabi splitting. By considering a system comprising a few-hundred-atom aluminum nanoparticle interacting with benzene molecules, we show that cavity quantum electrodynamics holds down to resonators of a few cubic nanometers in size, yielding a single-molecule coupling strength exceeding 200?meV due to a massive vacuum field of 4.5?V?·?nmsup-1/sup. In a broader perspective, ab initio methods enable parameter-free in-depth studies of polaritonic systems for emerging applications.
机译:单一发射器和集体强的耦合制度的强烈灯具相互作用引起了由于新出现的应用中的应用而引起了重大关注?Quantum和非线性光学器件以及改性与材料相关性质的机会。这些现象的探索是从理论上苛刻的,因为在量子光学,固态物理学和量子化学之间的交叉处存在极性膜。幸运的是,纳米级极性官可以在小的等血管分子系统中实现,使得用AB初始方法进行治疗。在这里,我们表明时间依赖性密度 - 功能理论计算可以进入纳米级等级分子杂交种的物理学并预测真空兔分裂。通过考虑包含与苯分子相互作用的几百原子铝纳米粒子的系统,我们表明腔量子电动动力学保持为尺寸的几个立方纳米的谐振器,产生超过200Ω偶联强度的单分子耦合强度巨大的真空场4.5?v?··nm -1 。在更广泛的角度下,AB Initio方法可以实现对偏热系统的无参数深入研究,用于新兴应用。

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