All-electrically controlled spintronics in altermagnetic heterostructures

Fuente: arXiv
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Main Authors: Fu, Pei-Hao, Lv, Qianqian, Xu, Yong, Cayao, Jorge, Liu, Jun-Feng, Yu, Xiang-Long
Format: Preprint
Published: 2025
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author Fu, Pei-Hao
Lv, Qianqian
Xu, Yong
Cayao, Jorge
Liu, Jun-Feng
Yu, Xiang-Long
author_facet Fu, Pei-Hao
Lv, Qianqian
Xu, Yong
Cayao, Jorge
Liu, Jun-Feng
Yu, Xiang-Long
contents The recent discovery of altermagnets, which exhibit spin splitting without net magnetization, opens new directions for spintronics beyond the limits of ferromagnets, antiferromagnets, and spin orbit coupled systems. We investigate spin selective quantum transport in heterostructures composed of a normal metal and a two dimensional d-wave altermagnet, and identify a universal mechanism for achieving perfect spin polarization. The mechanism is dictated by Fermi surface geometry: closed Fermi surfaces in weak altermagnets yield partial and oscillatory spin filtering, whereas open Fermi surfaces in strong altermagnets intrinsically enforce fully spin polarized conductance. Exploiting these distinct transport regimes, we propose all electrical spin filter and spin valve architectures, where resonant tunneling produces highly spin polarized conductance tunable by gate voltage and interface transparency. Altermagnets with open Fermi surfaces further support gate reversible perfect spin polarization that remains robust against interface scattering, disorder, and temperature. We also demonstrate an electrically controlled spin valve that reproduces the functionality of magnetic tunnel junctions without magnetic fields or relativistic mechanisms. d-wave altermagnets with open Fermi surfaces thus provide a promising platform for low dissipation, scalable, and magnetic field free spintronic devices with potential for integration into next generation quantum and CMOS compatible technologies.
format Preprint
id arxiv_https___arxiv_org_abs_2506_05504
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle All-electrically controlled spintronics in altermagnetic heterostructures
Fu, Pei-Hao
Lv, Qianqian
Xu, Yong
Cayao, Jorge
Liu, Jun-Feng
Yu, Xiang-Long
Mesoscale and Nanoscale Physics
Materials Science
Applied Physics
The recent discovery of altermagnets, which exhibit spin splitting without net magnetization, opens new directions for spintronics beyond the limits of ferromagnets, antiferromagnets, and spin orbit coupled systems. We investigate spin selective quantum transport in heterostructures composed of a normal metal and a two dimensional d-wave altermagnet, and identify a universal mechanism for achieving perfect spin polarization. The mechanism is dictated by Fermi surface geometry: closed Fermi surfaces in weak altermagnets yield partial and oscillatory spin filtering, whereas open Fermi surfaces in strong altermagnets intrinsically enforce fully spin polarized conductance. Exploiting these distinct transport regimes, we propose all electrical spin filter and spin valve architectures, where resonant tunneling produces highly spin polarized conductance tunable by gate voltage and interface transparency. Altermagnets with open Fermi surfaces further support gate reversible perfect spin polarization that remains robust against interface scattering, disorder, and temperature. We also demonstrate an electrically controlled spin valve that reproduces the functionality of magnetic tunnel junctions without magnetic fields or relativistic mechanisms. d-wave altermagnets with open Fermi surfaces thus provide a promising platform for low dissipation, scalable, and magnetic field free spintronic devices with potential for integration into next generation quantum and CMOS compatible technologies.
title All-electrically controlled spintronics in altermagnetic heterostructures
topic Mesoscale and Nanoscale Physics
Materials Science
Applied Physics
url https://arxiv.org/abs/2506.05504