论文标题
手性人造原子的共振荧光
Resonance fluorescence of a chiral artificial atom
论文作者
论文摘要
我们演示了一个超导性人工原子,其与微波光子波导具有强大的单向耦合。我们的人工原子是通过将transmon矩置量耦合到两个空间分离点与时间调节相互作用的波导来实现的。方向敏感的干扰是由我们方案中的参数耦合引起的,导致了非界面反应,在其中,我们测量自发发射超过100的前向/向后比。我们通过测量强烈的共振型在强烈的共振型驱动器和观察良好的环境中验证这种人造性策划原子的量子非线性非线性行为。此外,我们证明了人造原子的第二个过渡能的手性,并用脉冲序列控制其以实现巡回光子上的Qubit-State依赖性的非对流相。我们的演示提出了一个超导硬件平台,以实现手性量子光学范式中所追求的几个关键功能的可扩展性,包括具有全部连接性,多体纠缠的驱动驱动性稳定的量子网络,以及多体纠缠的驱动性稳定以及光的复杂非经典状态。
We demonstrate a superconducting artificial atom with strong unidirectional coupling to a microwave photonic waveguide. Our artificial atom is realized by coupling a transmon qubit to the waveguide at two spatially separated points with time-modulated interactions. Direction-sensitive interference arising from the parametric couplings in our scheme results in a non-reciprocal response, where we measure a forward/backward ratio of spontaneous emission exceeding 100. We verify the quantum nonlinear behavior of this artificial chiral atom by measuring the resonance fluorescence spectrum under a strong resonant drive and observing well-resolved Mollow triplets. Further, we demonstrate chirality for the second transition energy of the artificial atom and control it with a pulse sequence to realize a qubit-state-dependent non-reciprocal phase on itinerant photons. Our demonstration puts forth a superconducting hardware platform for the scalable realization of several key functionalities pursued within the paradigm of chiral quantum optics, including quantum networks with all-to-all connectivity, driven-dissipative stabilization of many-body entanglement, and the generation of complex non-classical states of light.