Ridge-Spin-Layer Coupling and Emergent Ridgetronics in 2D Altermagnets
Abstract
Extending valleytronics from discrete points to continuous lines in momentum space transforms dispersionless bands into a controllable degree of freedom. Here we introduce ridge--spin--layer coupling (RSLC) in two-dimensional (2D) altermagnets, where a one-dimensional continuous line of dispersionless electronic states (a ridge) in momentum space locks to both spin polarization and atomic sublayer. This ridge-induced quenching of kinetic energy mimics flat-band physics, yet crucially, RSLC grants external control, allowing for layer-selective switching of ridge orientation in reciprocal space, spin-filtered transport in real space, and a distinct electric Hall response. Guided by collinear spin layer group symmetry, we identify three 2D candidate materials, namely MgMo(PO), Ca(FeP), and MgV(SO), each featuring a crossed-ridge structure with two ridges, one per spin channel and sublayer. Our work establishes ridgetronics as a controllable platform for direction-discriminating currents, bridging dispersionless bands with multifunctional device operation.
Cite
@article{arxiv.2607.15009,
title = {Ridge-Spin-Layer Coupling and Emergent Ridgetronics in 2D Altermagnets},
author = {Mu Tian and Run-Wu Zhang and Chaoxi Cui and Zhi-Ming Yu and Yugui Yao},
journal= {arXiv preprint arXiv:2607.15009},
year = {2026}
}
Comments
7 pages, 4 figures