Nature. 2023 Oct;622(7983):481-486. doi: 10.1038/s41586-023-06505-7. Epub 2023 Oct 18.
Measurement has a special role in quantum theory: by collapsing the wavefunction, it can enable phenomena such as teleportation and thereby alter the 'arrow of time' that constrains unitary evolution. When integrated in many-body dynamics, measurements can lead to emergent patterns of quantum information in space-time that go beyond the established paradigms for characterizing phases, either in or out of equilibrium. For present-day noisy intermediate-scale quantum (NISQ) processors, the experimental realization of such physics can be problematic because of hardware limitations and the stochastic nature of quantum measurement. Here we address these experimental challenges and study measurement-induced quantum information phases on up to 70 superconducting qubits. By leveraging the interchangeability of space and time, we use a duality mapping to avoid mid-circuit measurement and access different manifestations of the underlying phases, from entanglement scaling to measurement-induced teleportation. We obtain finite-sized signatures of a phase transition with a decoding protocol that correlates the experimental measurement with classical simulation data. The phases display remarkably different sensitivity to noise, and we use this disparity to turn an inherent hardware limitation into a useful diagnostic. Our work demonstrates an approach to realizing measurement-induced physics at scales that are at the limits of current NISQ processors.
通过坍缩波函数,它可以实现诸如量子隐形传态等现象,从而改变限制幺正演化的“时间之箭”。当集成到多体动力学中时,测量可以导致时空量子信息的涌现模式,超越了用于描述无论是在平衡还是非平衡状态下的相位的既定范式。对于当今的噪声中等规模量子(NISQ)处理器来说,由于硬件限制和量子测量的随机性,这种物理现象的实验实现可能会出现问题。在这里,我们解决了这些实验挑战,并在多达 70 个超导量子比特上研究了测量诱导的量子信息相。通过利用空间和时间的可互换性,我们使用对偶映射来避免中间电路测量,并访问基础相的不同表现形式,从纠缠标度到测量诱导的量子隐形传态。我们通过一种与经典模拟数据相关联的解码协议获得了具有有限大小的相变特征。这些相位对噪声表现出明显不同的敏感性,我们利用这种差异将硬件固有的限制转化为有用的诊断方法。我们的工作展示了一种在当前 NISQ 处理器极限范围内实现测量诱导物理的方法。