Time reversal reserved spin valve and spin transistor based on unconventional $p$-wave magnets

Fuente: arXiv
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Main Authors: Yuan, Ze-Yong, Liu, Jun-Feng, Fu, Pei-Hao, Wang, Jun
Format: Preprint
Published: 2026
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author Yuan, Ze-Yong
Liu, Jun-Feng
Fu, Pei-Hao
Wang, Jun
author_facet Yuan, Ze-Yong
Liu, Jun-Feng
Fu, Pei-Hao
Wang, Jun
contents The anisotropic spin splitting in unconventional magnets opens new opportunities for realizing spintronic functionalities without relying on net magnetization or relativistic spin-orbit coupling. Here, we propose a spin valve and a spin transistor based on unconventional $p$-wave magnets (UPMs). The spin valve is realized in a junction where a normal metal is sandwiched between two UPMs whose exchange-field strength vectors are oriented transverse to the junction direction. The conductance of such a device is governed by the spin alignment between two UPMs: when their strength vectors are parallel, the spin-state alignment enables efficient electron transmission, leading to a high-conductance state; in contrast, the antiparallel configuration suppresses the conductance owing to the opposite spin orientations. Furthermore, the spin-valve can be extended to a spin transistor by replacing the central normal metal with another UPM with a longitudinally oriented strength vector and a perpendicular spin polarization axis. The central UPM enables uniform spin precession with the same precession frequency for all transverse modes. Both devices can be electrically controlled by modulating the strength vectors of UPMs. These findings establish UPMs as a promising platform for developing spintronic devices without net magnetization or relativistic spin-orbit coupling.
format Preprint
id arxiv_https___arxiv_org_abs_2603_18685
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Time reversal reserved spin valve and spin transistor based on unconventional $p$-wave magnets
Yuan, Ze-Yong
Liu, Jun-Feng
Fu, Pei-Hao
Wang, Jun
Mesoscale and Nanoscale Physics
Materials Science
The anisotropic spin splitting in unconventional magnets opens new opportunities for realizing spintronic functionalities without relying on net magnetization or relativistic spin-orbit coupling. Here, we propose a spin valve and a spin transistor based on unconventional $p$-wave magnets (UPMs). The spin valve is realized in a junction where a normal metal is sandwiched between two UPMs whose exchange-field strength vectors are oriented transverse to the junction direction. The conductance of such a device is governed by the spin alignment between two UPMs: when their strength vectors are parallel, the spin-state alignment enables efficient electron transmission, leading to a high-conductance state; in contrast, the antiparallel configuration suppresses the conductance owing to the opposite spin orientations. Furthermore, the spin-valve can be extended to a spin transistor by replacing the central normal metal with another UPM with a longitudinally oriented strength vector and a perpendicular spin polarization axis. The central UPM enables uniform spin precession with the same precession frequency for all transverse modes. Both devices can be electrically controlled by modulating the strength vectors of UPMs. These findings establish UPMs as a promising platform for developing spintronic devices without net magnetization or relativistic spin-orbit coupling.
title Time reversal reserved spin valve and spin transistor based on unconventional $p$-wave magnets
topic Mesoscale and Nanoscale Physics
Materials Science
url https://arxiv.org/abs/2603.18685