Quantum information diode based on a magnonic crystal

R. Shukla, L. Chotorlishvili, V. Vijayan, Harshit Verma, A. Ernst, S. Parkin, S. K. Mishra
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Abstract

Exploiting the effect of nonreciprocal magnons in a system with no inversion symmetry, we propose a concept of a quantum information diode, i.e., a device rectifying the amount of quantum information transmitted in the opposite directions. We control the asymmetric left and right quantum information currents through an applied external electric field and quantify it through the left and right out-of-time-ordered correlation (OTOC). To enhance the efficiency of the quantum information diode, we utilize a magnonic crystal. We excite magnons of different frequencies and let them propagate in opposite directions. Nonreciprocal magnons propagating in opposite directions have different dispersion relations. Magnons propagating in one direction match resonant conditions and scatter on gate magnons. Therefore, magnon flux in one direction is damped in the magnonic crystal leading to an asymmetric transport of quantum information in the quantum information diode. A quantum information diode can be fabricated from an yttrium iron garnet (YIG) film. This is an experimentally feasible concept and implies certain conditions: low temperature and small deviation from the equilibrium to exclude effects of phonons and magnon interactions. We show that rectification of the flaw of quantum information can be controlled efficiently by an external electric field and magnetoelectric effects.
基于磁振晶体的量子信息二极管
利用非互易磁振子在无反转对称系统中的效应,我们提出了量子信息二极管的概念,即一种校正反向传输量子信息量的装置。我们通过外加电场控制不对称的左右量子信息流,并通过左右非时序相关(OTOC)对其进行量化。为了提高量子信息二极管的效率,我们采用了磁振子晶体。我们激发不同频率的磁振子,让它们向相反的方向传播。相反方向传播的非互易磁振子具有不同的色散关系。在一个方向上传播的磁振子匹配共振条件,并在门磁振子上散射。因此,一个方向的磁振子通量在磁振子晶体中受到阻尼,导致量子信息二极管中量子信息的不对称输运。利用钇铁石榴石(YIG)薄膜可以制备量子信息二极管。这是一个实验上可行的概念,并要求一定的条件:低温和小的偏离平衡,以排除声子和磁振子相互作用的影响。我们证明了利用外加电场和磁电效应可以有效地控制量子信息缺陷的整流。
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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