论文标题
量子电动力学超材料
Quantum Electrodynamical Metamaterials
论文作者
论文摘要
最近的实验表明,光和物质之间的超晶体耦合是修改材料特性的有希望的途径,例如电运输,化学反应速率,甚至超导性。在这里,我们探索(Ultra)强耦合,作为基于构成单元在Ultrastrong耦合方案中单独的组成单元的集合来操纵超材料的光学响应的一种手段。我们基于量子电动力学系统的线性响应开发一个框架,以研究光 - 耦合如何影响光学响应。我们首先应用此框架以找到与单个空腔模式相连的两级发射极的光学响应,该腔模式可以看作是由该系统重复单元构建的超材料的“元原子”。我们发现光学行为的范围从简单的两级系统(Lorentz-oscillator)到有效透明的光学行为,因为耦合从弱到深强耦合方案。我们探索了这些元原子的一维链,证明了其光学行为的可调性。我们的方案最终可能会提供一个框架,用于设计具有低损坏,高度限制模式以及可调(单光子)非线性的新超材料。
Recent experiments have revealed ultrastrong coupling between light and matter as a promising avenue for modifying material properties, such as electrical transport, chemical reaction rates, and even superconductivity. Here, we explore (ultra)strong coupling as a means for manipulating the optical response of metamaterials based on ensembles of constituent units individually in the ultrastrong coupling regime. We develop a framework based on linear response for quantum electrodynamical systems to study how light-matter coupling affects the optical response. We begin by applying this framework to find the optical response of a two-level emitter coupled to a single cavity mode, which could be seen as a "meta-atom" of a metamaterial built from repeated units of this system. We find optical behaviors ranging from that of a simple two-level system (Lorentz-oscillator) to effectively transparent, as the coupling goes from the weak to deep strong coupling regimes. We explore a one-dimensional chain of these meta-atoms, demonstrating the tunability of its optical behavior. Our scheme may ultimately provide a framework for designing new metamaterials with low-loss, highly-confined modes, as well as tunable (single-photon) nonlinearities.