自旋电子学
凝聚态物理
材料科学
居里温度
铁磁性
磁性
范德瓦尔斯力
磁各向异性
各向异性
超顺磁性
磁化
物理
磁场
光学
分子
量子力学
作者
Zeya Li,Ming Tang,Junwei Huang,Feng Qin,Lingyi Ao,Zhiwei Shen,Caorong Zhang,Peng Chen,Xiangyu Bi,Caiyu Qiu,Zhipeng Yu,Kun Zhai,Toshiya Ideue,Lin Wang,Zhongyuan Liu,Yongjun Tian,Yoshihiro Iwasa,Hongtao Yuan
标识
DOI:10.1002/adma.202201209
摘要
The technological appeal of van der Waals ferromagnetic materials is the ability to control magnetism under external fields with desired thickness toward novel spintronic applications. For practically useful devices, ferromagnetism above room temperature or tunable magnetic anisotropy is highly demanded but remains challenging. To date, only a few layered materials exhibit unambiguous ferromagnetic ordering at room temperature via gating techniques or interface engineering. Here, it is demonstrated that the magnetic anisotropy control and dramatic modulation of Curie temperature (Tc ) up to 400 K are realized in layered Fe5 GeTe2 via the high-pressure diamond-anvil-cell technique. Magnetic phases manifesting with in-plane anisotropic, out-of-plane anisotropic and nearly isotropic magnetic states can be tuned in a controllable way, depicted by the phase diagram with a maximum Tc up to 360 K. Remarkably, the Tc can be gradually enhanced to above 400 K owing to the Fermi surface evolution during a pressure loading-deloading process. Such an observation sheds light on the understanding and control of emergent magnetic states in practical spintronic applications.
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