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Cavity optomechanics mediated by a quantum two-level system

机译:量子二能级系统介导的腔光力学

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摘要

Coupling electromagnetic waves in a cavity and mechanical vibrations via the radiation pressure of photons is a promising platform for investigations of quantum–mechanical properties of motion. A drawback is that the effect of one photon tends to be tiny, and hence one of the pressing challenges is to substantially increase the interaction strength. A novel scenario is to introduce into the setup a quantum two-level system (qubit), which, besides strengthening the coupling, allows for rich physics via strongly enhanced nonlinearities. Here we present a design of cavity optomechanics in the microwave frequency regime involving a Josephson junction qubit. We demonstrate boosting of the radiation–pressure interaction by six orders of magnitude, allowing to approach the strong coupling regime. We observe nonlinear phenomena at single-photon energies, such as an enhanced damping attributed to the qubit. This work opens up nonlinear cavity optomechanics as a plausible tool for the study of quantum properties of motion.
机译:通过光子的辐射压力将腔中的电磁波与机械振动耦合在一起,是研究运动的量子力学性质的有前途的平台。缺点是一个光子的作用趋于微小,因此紧迫的挑战之一是实质上增加相互作用强度。一种新颖的方案是将量子两级系统(qubit)引入装置中,该系统除了加强耦合之外,还可以通过大大增强的非线性来实现丰富的物理性质。在这里,我们介绍一种涉及约瑟夫森结量子位的微波频率范围内的腔光力学设计。我们证明了辐射-压力相互作用增加了六个数量级,从而可以接近强耦合状态。我们在单光子能量下观察到非线性现象,例如归因于量子位的增强阻尼。这项工作开辟了非线性腔光力学作为研究运动量子性质的合理工具。

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