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Quantum phases in circuit QED with a superconducting qubit array

机译:具有超导量子位阵列的电路QED中的量子相

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摘要

Circuit QED on a chip has become a powerful platform for simulating complex many-body physics. In this report, we realize a Dicke-Ising model with an antiferromagnetic nearest-neighbor spin-spin interaction in circuit QED with a superconducting qubit array. We show that this system exhibits a competition between the collective spin-photon interaction and the antiferromagnetic nearest-neighbor spin-spin interaction, and then predict four quantum phases, including: a paramagnetic normal phase, an antiferromagnetic normal phase, a paramagnetic superradiant phase, and an antiferromagnetic superradiant phase. The antiferromagnetic normal phase and the antiferromagnetic superradiant phase are new phases in many-body quantum optics. In the antiferromagnetic superradiant phase, both the antiferromagnetic and superradiant orders can coexist, and thus the system possesses symmetry. Moreover, we find an unconventional photon signature in this phase. In future experiments, these predicted quantum phases could be distinguished by detecting both the mean-photon number and the magnetization.
机译:芯片上的电路QED已成为模拟复杂多体物理的强大平台。在此报告中,我们在具有超导量子位阵列的电路QED中实现了具有反铁磁最近邻自旋相互作用的Dicke-Ising模型。我们证明了该系统在集体自旋光子相互作用与反铁磁最近邻自旋自旋相互作用之间表现出竞争,然后预测了四个量子相,包括:顺磁性正相,反铁磁性正相,顺磁性超辐射相,和反铁磁超辐射相。反铁磁正相和反铁磁超辐射相是多体量子光学中的新相。在反铁磁超辐射阶段,反铁磁和超辐射阶数可以共存,因此系统具有对称性。此外,我们在这一阶段发现了一个非常规的光子签名。在未来的实验中,可以通过检测平均光子数和磁化强度来区分这些预测的量子相。

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