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Exploring the quantum critical behaviour in a driven Tavis-Cummings circuit

机译:探索Tavis-Cummings驱动电路中的量子临界行为

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Quantum phase transitions play an important role in many-body systems and have been a research focus in conventional condensed-matter physics over the past few decades. Artificial atoms, such as superconducting qubits that can be individually manipulated, provide a new paradigm of realising and exploring quantum phase transitions by engineering an on-chip quantum simulator. Here we demonstrate experimentally the quantum critical behaviour in a highly controllable superconducting circuit, consisting of four qubits coupled to a common resonator mode. By off-resonantly driving the system to renormalize the critical spin-field coupling strength, we have observed a four-qubit nonequilibrium quantum phase transition in a dynamical manner; that is, we sweep the critical coupling strength over time and monitor the four-qubit scaled moments for a signature of a structural change of the system's eigenstates. Our observation of the nonequilibrium quantum phase transition, which is in good agreement with the driven Tavis-Cummings theory under decoherence, offers new experimental approaches towards exploring quantum phase transition-related science, such as scaling behaviours, parity breaking and long-range quantum correlations.
机译:量子相变在多体系统中起着重要作用,并且在过去的几十年中一直是常规凝聚态物理的研究重点。人工原子(例如可以单独操作的超导量子位)通过设计片上量子模拟器提供了实现和探索量子相变的新范例。在这里,我们通过实验证明了在高度可控的超导电路中的量子临界行为,该电路由耦合到公共谐振器模式的四个量子位组成。通过以非共振方式驱动系统以重新规范化临界自旋场耦合强度,我们已经观察到了一种动态的四量子位非平衡量子相变。也就是说,随着时间的推移,我们将扫描临界耦合强度,并监视四比特量级的矩,以识别系统本征态的结构变化。我们对非平衡量子相变的观察与在去相干下驱动的Tavis-Cummings理论非常吻合,为探索与量子相变相关的科学提供了新的实验方法,例如缩放行为,奇偶校验和远距离量子相关性。 。

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