论文标题
在手性耦合的原子纳米光腔中进行状态雕刻
State Carving in a Chirally-Coupled Atom-Nanophotonic Cavity
论文作者
论文摘要
多Quibit系统的一致量子控制代表了量子科学和量子技术中具有挑战性的任务之一。在这里,我们从理论上研究了与集体非偏置耦合的原子纳米腔腔中的反射率光谱。在具有较高协作性的强耦合方案中,我们从理论上预测了由于手性耦合的破坏性干扰,我们从理论上预测了不同的谐波光谱倾角。由于频谱中有良好的分离多重倾角,形成对比的反射率表明对所需的纠缠状态制备进行了新的控制旋钮。我们建议利用这种原子纳米量腔,通过光子介导的偶极 - 偶极相互作用和衰减通道的手性来量化原子内部状态,在此,可以在单个photon Replection Replection Flactrectrum中量身定制原子和W状态的原子原子原子和W状态。我们的结果铺平了迈向多等级国家的量子工程的道路,并为原子中的连贯和可扩展的多部分纠缠传输提供了新的机会。
Coherent quantum control of multiqubit systems represents one of the challenging tasks in quantum science and quantum technology. Here we theoretically investigate the reflectivity spectrum in an atom-nanophotonic cavity with collective nonreciprocal couplings. In the strong-coupling regime with a high cooperativity, we theoretically predict distinct on-resonance spectral dips owing to destructive interferences of chiral couplings. Due to the well-separated multiple dips in the spectrum, a contrasted reflectivity suggests a new control knob over the desired entangled state preparation. We propose to utilize such atom-nanophotonic cavity to quantum engineer the atomic internal states via photon-mediated dipole-dipole interactions and the chirality of decay channels, where the atomic Bell state and W states for arbitrary number of atoms can be tailored and heralded by state carving in the single-photon reflection spectrum. Our results pave the way toward quantum engineering of multiqubit states and offer new opportunities for coherent and scalable multipartite entanglement transport in atoms coupled to nanophotonic devices.