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处于频率纠缠光场中的量子忆阻器

Quantum Memristors in Frequency-Entangled Optical Fields.

作者信息

Gonzalez-Raya Tasio, Lukens Joseph M, Céleri Lucas C, Sanz Mikel

机构信息

Department of Physical Chemistry, University of the Basque Country UPV/EHU, Apartado 644, 48080 Bilbao, Spain.

Quantum Information Science Group, Oak Ridge National Laboratory, Oak Ridge, TN 37831, USA.

出版信息

Materials (Basel). 2020 Feb 14;13(4):864. doi: 10.3390/ma13040864.

Abstract

A quantum memristor is a passive resistive circuit element with memory, engineered in a given quantum platform. It can be represented by a quantum system coupled to a dissipative environment, in which a system-bath coupling is mediated through a weak measurement scheme and classical feedback on the system. In quantum photonics, such a device can be designed from a beam splitter with tunable reflectivity, which is modified depending on the results of measurements in one of the outgoing beams. Here, we show that a similar implementation can be achieved with frequency-entangled optical fields and a frequency mixer that, working similarly to a beam splitter, produces state superpositions. We show that the characteristic hysteretic behavior of memristors can be reproduced when analyzing the response of the system with respect to the control, for different experimentally attainable states. Since memory effects in memristors can be exploited for classical and neuromorphic computation, the results presented in this work could be a building block for constructing quantum neural networks in quantum photonics, when scaling up.

摘要

量子忆阻器是一种在给定量子平台上设计的具有记忆功能的无源电阻性电路元件。它可以由一个与耗散环境耦合的量子系统来表示,其中系统与环境的耦合是通过弱测量方案和对系统的经典反馈来介导的。在量子光子学中,这样的器件可以由具有可调反射率的分束器设计而成,该反射率会根据其中一束出射光的测量结果而改变。在这里,我们表明,利用频率纠缠光场和类似于分束器工作的混频器可以实现类似的实现方式,从而产生态叠加。我们表明,当分析系统对于不同实验可达到状态的控制响应时,可以重现忆阻器的特征滞后行为。由于忆阻器中的记忆效应可用于经典计算和神经形态计算,因此当进行扩展时,本文所呈现的结果可能是在量子光子学中构建量子神经网络的一个组成部分。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/929b/7079656/5a257c498fa4/materials-13-00864-g0A1.jpg

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