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首页> 外文期刊>The Journal of Chemical Physics >Cumulant expansion for the treatment of light-matter interactions in arbitrary material structures
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Cumulant expansion for the treatment of light-matter interactions in arbitrary material structures

机译:用于治疗任意材料结构的光物质相互作用的累积膨胀

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摘要

Strong coupling of quantum emitters with confined electromagnetic modes of nanophotonic structures may be used to change optical, chemical, and transport properties of materials, with significant theoretical effort invested toward a better understanding of this phenomenon. However, a full theoretical description of both matter and light is an extremely challenging task. Typical theoretical approaches simplify the description of the photonic environment by describing it as a single mode or few modes. While this approximation is accurate in some cases, it breaks down strongly in complex environments, such as within plasmonic nanocavities, and the electromagnetic environment must be fully taken into account. This requires the quantum description of a continuum of bosonic modes, a problem that is computationally hard. We here investigate a compromise where the quantum character of light is taken into account at modest computational cost. To do so, we focus on a quantum emitter that interacts with an arbitrary photonic spectral density and employ the cumulant, or cluster, expansion method to the Heisenberg equations of motion up to first, second, and third order. We benchmark the method by comparing it with exact solutions for specific situations and show that it can accurately represent dynamics for many parameter ranges.
机译:量子发射器具有狭窄的纳米光学结构的量子发射器的强耦合可用于改变材料的光学,化学和运输性能,具有显着的理论努力,投入更好地理解这种现象。然而,对物质和光的完整理论描述是一个极具挑战性的任务。典型的理论方法通过将其描述为单个模式或几种模式,简化了光子环境的描述。虽然在某些情况下,这种近似是准确的,但它在复杂的环境中强烈打破,例如在等离子体纳米盖中,并且必须完全考虑电磁环境。这需要对络络模式连续的量子描述,是计算方式的问题。我们在这里调查折衷,以适度的计算成本考虑光的量子特征。为此,我们专注于Quantum发射器,其与任意光子光谱密度相互作用,并采用累积率,簇,膨胀方法到Heisenberg的运动方程,直到第一,第二和三阶。我们通过将其与特定情况进行比较来基准方法,并表明它可以准确地表示许多参数范围的动态。

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