Quantum Memristors in Frequency-Entangled Optical Fields

Author:

Gonzalez-Raya Tasio,Lukens Joseph M.ORCID,Céleri Lucas C.,Sanz MikelORCID

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.

Funder

Basque Government

U.S. Department of Energy

Publisher

MDPI AG

Subject

General Materials Science

Cited by 11 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Model' svyazannykh kvantovykh memristorov na osnove poymannogo v lovushku odinochnogo iona 171Yb+;Письма в Журнал экспериментальной и теоретической физики;2024-12-15

2. Microwave quantum memcapacitor effect;Communications Materials;2024-05-07

3. Machine Learning for Maximizing the Memristivity of Single and Coupled Quantum Memristors;Advanced Quantum Technologies;2024-04-14

4. Model of Coupled Quantum Memristors Based on a Single Trapped 171Yb+ Ion;JETP Letters;2024-03

5. Proposal for Trapped-Ion Quantum Memristor;Entropy;2023-07-28

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