杰纳斯
自旋电子学
点反射
拓扑序
拓扑简并
电负性
凝聚态物理
拓扑(电路)
不对称
单层
硫族元素
电荷密度
密度泛函理论
电荷(物理)
材料科学
拓扑绝缘体
量子
拓扑量子数
量子自旋霍尔效应
化学物理
自旋(空气动力学)
Valleytronics公司
物理
退化(生物学)
石墨烯
电子密度
对称(几何)
纳米技术
量子计算机
对称保护拓扑序
化学
异质结
硅烯
氧化物
电子
日耳曼
作者
J. Guerrero-Sánchez,R. Ponce-Perez,D. M. Hoat,R. Gonzalez-Hernandez
标识
DOI:10.1038/s41598-026-38927-4
摘要
Through a comprehensive computational study, we demonstrate that g-type altermagnetism can be effectively engineered in Janus MnPS₃ monolayer via chalcogen substitution. Replacing one sulfur layer with O, Se, or Te breaks inversion symmetry and induces a charge density asymmetry, lifting Kramers degeneracy and resulting in a momentum-dependent spin splitting characteristic of altermagnetic materials. The magnitude of this splitting is governed by the interplay of electronegativity and atomic radius, with oxygen substitution yielding the largest effect due to its strong Mn-O and P-O bonds driven by high electronegativity and small atomic size. Remarkably, the structural asymmetry and charge redistribution also facilitate a topological response, leading to the emergence of a topological phase with nontrivial quantum spin Hall order. Our findings reveal a new pathway to tailor altermagnetism and topological properties in 2D materials through charge density engineering, opening exciting prospects for spintronic and quantum topological applications in layered magnetic systems.
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