凝聚态物理
铁磁性
自旋电子学
联轴节(管道)
材料科学
相变
Crystal(编程语言)
原子轨道
电子
磁化
电子转移
晶体结构
拓扑(电路)
四方晶系
格子(音乐)
相(物质)
应变工程
化学物理
电荷(物理)
电子结构
物理
金属间化合物
作者
Meng Wang,Lin Ma,Lidong He,Danmin Liu,Siyu Wang,C W Liu,Cong Wang
出处
期刊:Microstructures
[OAE Publishing Inc.]
日期:2026-02-09
卷期号:6 (1)
标识
DOI:10.20517/microstructures.2025.50
摘要
Magnetic phase transitions govern the performance frontier of spintronic technologies, yet their microscopic origins in complex intermetallics remain elusive. Here, we resolve this challenge through a combined Physical Property Measurement System (PPMS), in situ X-ray diffraction (XRD), and Maximum Entropy Method (MEM) study of PrMn2Ge2, revealing that thermally driven electron transfer from Ge-4p to Mn-3d orbitals serves as the dominant mechanism for its sequential transitions: canted ferromagnetic (Fmc, 330 K) → conical magnetic order (Fmiab). Crucially, this directional charge migration first enhances Mn-Ge covalency, thereby driving lattice contraction; this amplified covalency subsequently strengthens Mn-Mn exchange interactions, inducing magnetic reorganization; finally, the resultant electron depletion at Pr sites weakens 4f spin chirality, consequently suppressing topological transport. We thereby propose an electron-lattice-magnetism triple-coupling theory. Building directly on our discovery of electron-transfer-driven phase transitions, this framework establishes orbital-resolved electron dynamics as the central control mechanism - replacing thermal disorder - and enables two practical engineering strategies: Ge-site substitution to modulate charge transfer intensity, alongside epitaxial strain for precise control of magnetoelectric coupling via bond-length tuning. Collectively, this demonstrates electron-transfer engineering as a directly implementable strategy for manipulating topological states in functional magnets.
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