论文标题
在强烈相互交互的倾斜系统中的巨大纠正
Giant rectification in strongly-interacting driven tilted systems
论文作者
论文摘要
相关的量子系统具有来自其组成颗粒之间相互作用的广泛非平凡效应。在非平衡情况下,这些表现出在现象中,例如多体绝缘状态和保守数量的电流的异常缩放定律,对于量子电路技术中的应用至关重要。在这项工作中,我们提出了一个基于强粒子相互作用与倾斜电位之间的不对称相互作用的巨大整流方案,每个相互作用都会自行诱导绝缘状态。而对于反向偏差,既有合作并引起了用指数抑制的电流加强的绝缘子,但对于向前的偏见,它们会竞争产生传导共振;这导致了许多数量级的纠正系数。我们发现这些共振的基础机制是在系统批量能量谱中避免穿越的能量本征态之间增强的连贯性。此外,我们通过出现增强的密度基质杂质和操作员空间纠缠熵的熵来证明多体非平衡导电状态的复杂性。我们的提案为在当前可用的电子和量子模拟平台中实现完美的二极管铺平了道路。
Correlated quantum systems feature a wide range of nontrivial effects emerging from interactions between their constituting particles. In nonequilibrium scenarios, these manifest in phenomena such as many-body insulating states and anomalous scaling laws of currents of conserved quantities, crucial for applications in quantum circuit technologies. In this work we propose a giant rectification scheme based on the asymmetric interplay between strong particle interactions and a tilted potential, each of which induces an insulating state on their own. While for reverse bias both cooperate and induce a strengthened insulator with an exponentially suppressed current, for forward bias they compete generating conduction resonances; this leads to a rectification coefficient of many orders of magnitude. We uncover the mechanism underlying these resonances as enhanced coherences between energy eigenstates occurring at avoided crossings in the system's bulk energy spectrum. Furthermore, we demonstrate the complexity of the many-body nonequilibrium conducting state through the emergence of enhanced density matrix impurity and operator space entanglement entropy close to the resonances. Our proposal paves the way for implementing a perfect diode in currently-available electronic and quantum simulation platforms.