Lithium and Vanadium Intercalation into Bilayer V2Se2O: Ferrimagnetic-Ferroelastic Multiferroics and Anomalous and Spin Transport
Long Zhang, Yuxin Liu, Junfeng Ren, Guangqian Ding, Xiaotian Wang, Guangxin Ni, Guoying Gao, Zhenxiang Cheng

TL;DR
This paper proposes an intercalation-driven approach to enhance the electronic, magnetic, and transport properties of V2Se2O bilayers, creating multifunctional multiferroic altermagnets with potential for room-temperature spintronic applications.
Contribution
It introduces a novel intercalation paradigm to induce multiferroic and altermagnetic properties in V2Se2O bilayers, demonstrating significant improvements in spin transport and multifunctionality.
Findings
Intercalation induces room-temperature ferrimagnetic and ferromagnetic order.
Enhanced spin splitting and half-metallicity improve spin filtering.
Achieves giant magnetoresistance and high thermal tunneling magnetoresistance.
Abstract
Spin splitting in emerging altermagnets is non-relativistic and momentum-dependent, yet energy-independent, and localized in momentum space, posing challenges for practical applications. Here, we propose an intercalation-driven paradigm for altermagnets to attain ameliorative electronic structures, multiferroic characteristics, and anomalous and spin transport functionalities. As a representative system, we investigate electrochemistry- and self-intercalated V2Se2O bilayers, building on the recently reported room-temperature K- and Rb-intercalated V2Se2O family [Nat. Phys. 2025, 21, 754; Nat. Phys. 2025, 21, 760], utilizing density functional theory, Wannier function analyses, Monte Carlo simulations, and non-equilibrium Green function methods. Intercalation induces room-temperature intralayer ferrimagnetic and interlayer ferromagnetic order (358 K for Li-intercalation and 773 K for…
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