All-voltage control of Giant Magnetoresistance

Fuente: arXiv
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Main Authors: Wei, Lujun, Zhang, Yiyang, Huang, Fei, Yang, Jiajv, Peng, Jincheng, Li, Yanghui, Lu, Yu, Chen, Jiarui, Liu, Tianyu, Pu, Yong, Du, Jun
Format: Preprint
Published: 2024
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author Wei, Lujun
Zhang, Yiyang
Huang, Fei
Yang, Jiajv
Peng, Jincheng
Li, Yanghui
Lu, Yu
Chen, Jiarui
Liu, Tianyu
Pu, Yong
Du, Jun
author_facet Wei, Lujun
Zhang, Yiyang
Huang, Fei
Yang, Jiajv
Peng, Jincheng
Li, Yanghui
Lu, Yu
Chen, Jiarui
Liu, Tianyu
Pu, Yong
Du, Jun
contents The aim of voltage control of magnetism is to reduce the power consumption of spintronic devices. For a spin valve, the magnetization directions of two ferromagnetic layers determine the giant magnetoresistance magnitude. However, achieving all-voltage manipulation of the magnetization directions between parallel and antiparallel states is a significant challenge. Here, we demonstrate that by utilizing two exchange-biased Co/IrMn bilayers with opposite pinning directions and with ferromagnetic coupling through the Ruderman-Kittel-Kasuya-Yosida interaction between two Co layers, the magnetization directions of the two ferromagnetic layers of a spin valve can be switched between parallel and antiparallel states through allvoltage-induced strain control. The all-voltage controlled giant magnetoresistance is repeatable and nonvolatile. The rotation of magnetizations in the two Co layers under voltages, from antiparallel to parallel states, occurs in opposite directions as revealed through simulations utilizing the Landau-Lifshitz-Gilbert equation. This work can provide valuable reference for the development of low-power all-voltage-controlled spintronic devices.
format Preprint
id arxiv_https___arxiv_org_abs_2405_16863
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle All-voltage control of Giant Magnetoresistance
Wei, Lujun
Zhang, Yiyang
Huang, Fei
Yang, Jiajv
Peng, Jincheng
Li, Yanghui
Lu, Yu
Chen, Jiarui
Liu, Tianyu
Pu, Yong
Du, Jun
Mesoscale and Nanoscale Physics
Materials Science
The aim of voltage control of magnetism is to reduce the power consumption of spintronic devices. For a spin valve, the magnetization directions of two ferromagnetic layers determine the giant magnetoresistance magnitude. However, achieving all-voltage manipulation of the magnetization directions between parallel and antiparallel states is a significant challenge. Here, we demonstrate that by utilizing two exchange-biased Co/IrMn bilayers with opposite pinning directions and with ferromagnetic coupling through the Ruderman-Kittel-Kasuya-Yosida interaction between two Co layers, the magnetization directions of the two ferromagnetic layers of a spin valve can be switched between parallel and antiparallel states through allvoltage-induced strain control. The all-voltage controlled giant magnetoresistance is repeatable and nonvolatile. The rotation of magnetizations in the two Co layers under voltages, from antiparallel to parallel states, occurs in opposite directions as revealed through simulations utilizing the Landau-Lifshitz-Gilbert equation. This work can provide valuable reference for the development of low-power all-voltage-controlled spintronic devices.
title All-voltage control of Giant Magnetoresistance
topic Mesoscale and Nanoscale Physics
Materials Science
url https://arxiv.org/abs/2405.16863