Entanglement Structure of Non-Gaussian States and How to Measure It

Henry Froland, Torsten V. Zache, Robert Ott, Niklas Mueller
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Abstract

Rapidly growing capabilities of quantum simulators to probe quantum many-body phenomena require new methods to characterize increasingly complex states. We present a protocol that constrains quantum states by experimentally measured correlation functions which only scales polynomially with system size. This method enables measurement of a quantum state's entanglement structure, opening a new route to study entanglement-related phenomena. Our approach extends Gaussian state parameterizations by systematically incorporating higher-order correlations. We show the protocol's usefulness in conjunction with current and forthcoming experimental capabilities, focusing on weakly interacting fermions as a proof of concept. Here, the lowest non-trivial expansion quantitatively predicts early time thermalization dynamics, including signaling the on-set of quantum chaos indicated by the entanglement Hamiltonian.
非高斯状态的纠缠结构及其测量方法
量子模拟器探测量子多体现象的能力迅速增长,需要新的方法来描述日益复杂的状态。我们提出了一种通过实验测量相关函数来约束量子态的协议,这种相关函数只随系统大小的多项式变化而变化。这种方法可以测量量子态的纠缠结构,为研究纠缠相关现象开辟了一条新途径。我们的方法通过系统地纳入高阶相关性,扩展了高斯状态参数化。我们以弱相互作用费米子作为概念证明,展示了该协议与当前和即将到来的实验能力相结合的实用性。在这里,最低非三维扩展定量地预测了早期时间热化动力学,包括纠缠哈密顿所指示的量子混沌的开启信号。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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