Choi Soonwon, Bao Yimu, Qi Xiao-Liang, Altman Ehud
Department of Physics, University of California Berkeley, Berkeley, California 94720, USA.
Stanford Institute for Theoretical Physics, Stanford University, Stanford, California 94305, USA.
Phys Rev Lett. 2020 Jul 17;125(3):030505. doi: 10.1103/PhysRevLett.125.030505.
We analyze the dynamics of entanglement entropy in a generic quantum many-body open system from the perspective of quantum information and error corrections. We introduce a random unitary circuit model with intermittent projective measurements, in which the degree of information scrambling by the unitary and the rate of projective measurements are independently controlled. This model displays two stable phases, characterized by the volume-law and area-law scaling entanglement entropy in steady states. The transition between the two phases is understood from the point of view of quantum error correction: the chaotic unitary evolution protects quantum information from projective measurements that act as errors. A phase transition occurs when the rate of errors exceeds a threshold that depends on the degree of information scrambling. We confirm these results using numerical simulations and obtain the phase diagram of our model. Our work shows that information scrambling plays a crucial role in understanding the dynamics of entanglement in an open quantum system and relates the entanglement phase transition to changes in quantum channel capacity.
我们从量子信息和纠错的角度分析了一般量子多体开放系统中纠缠熵的动力学。我们引入了一个具有间歇性投影测量的随机酉电路模型,其中酉操作的信息扰乱程度和投影测量的速率是独立控制的。该模型表现出两个稳定相,其稳态纠缠熵分别由体积律和面积律标度表征。从量子纠错的角度可以理解这两个相之间的转变:混沌的酉演化保护量子信息免受作为错误的投影测量的影响。当错误率超过取决于信息扰乱程度的阈值时,就会发生相变。我们通过数值模拟证实了这些结果,并得到了我们模型的相图。我们的工作表明,信息扰乱在理解开放量子系统中的纠缠动力学方面起着关键作用,并将纠缠相变与量子信道容量的变化联系起来。