Engineering Spin Splitting in Antiferromagnets by Superatoms with Internal Degree of Freedom
Fengxian Ma, Zeying Zhang, Zhen Gao, Xiaobei Wan, Yandong Ma, Yalong Jiao, Shengyuan A. Yang

TL;DR
This paper proposes a new method to induce spin splitting in antiferromagnetic materials by using superatoms with internal degrees of freedom, demonstrated through first-principles calculations on Mo-decorated carborophene sheets.
Contribution
It introduces a novel strategy to engineer spin splitting in AFMs using superatoms with internal degrees of freedom, bridging superatom chemistry and spintronics.
Findings
Superatom internal degrees of freedom influence symmetry and spin splitting.
First-principles calculations show spin splitting in Mo-decorated carborophene.
Different superatom isomers lead to distinct spin splitting patterns.
Abstract
Superatoms, stable atomic clusters acting as building blocks for new materials, offer unique opportunities due to their rich properties and potential for 2D material assembly. While extensive research has focused on their similarities to ordinary atoms, the role of their internal degrees of freedom (IDOF) remains largely unexplored. Concurrently, compensated antiferromagnets (AFMs) with intrinsic spin-split band structures have emerged as a promising class of materials for spintronics, yet their experimental realization, particularly in two dimensions, is limited. Here, we bridge these two fields by proposing a novel strategy to achieve spin-split AFMs using superatoms with IDOFs. We establish our core concept using a simple model, demonstrating how superatom IDOFs can be leveraged to engineer system symmetry and induce spin splitting in AFM states. We concretely illustrate this…
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