凝聚态物理
铁磁性
超晶格
反铁磁性
静水压力
材料科学
磁场
格子(音乐)
饱和(图论)
相变
物理
热力学
声学
数学
量子力学
组合数学
作者
Jifeng Shao,Yuntian Liu,Meng Zeng,Jing Li,Xuefeng Wu,Xiao‐Ming Ma,Feng Jin,Ruie Lu,Yi-Chen Sun,Mingqiang Gu,Kedong Wang,Wenbin Wu,Liusuo Wu,Chang Liu,Qihang Liu,Yüe Zhao
出处
期刊:Nano Letters
[American Chemical Society]
日期:2021-07-01
卷期号:21 (13): 5874-5880
被引量:32
标识
DOI:10.1021/acs.nanolett.1c01874
摘要
The magnetic structures of MnBi2Te4(Bi2Te3)n can be manipulated by tuning the interlayer coupling via the number of Bi2Te3 spacer layers n, while the intralayer ferromagnetic (FM) exchange coupling is considered too robust to control. By applying hydrostatic pressure up to 3.5 GPa, we discover opposite responses of magnetic properties for n = 1 and 2. MnBi4Te7 stays at A-type antiferromagnetic (AFM) phase with a decreasing Néel temperature and an increasing saturation field. In sharp contrast, MnBi6Te10 experiences a phase transition from A-type AFM to a quasi-two-dimensional FM state with a suppressed saturation field under pressure. First-principles calculations reveal the essential role of intralayer exchange coupling from lattice compression in determining these magnetic properties. Such magnetic phase transition is also observed in 20% Sb-doped MnBi6Te10 because of the in-plane lattice compression.
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