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Reversible Non-Volatile Electronic Switching in a Near Room Temperature van der Waals Ferromagnet

Authors :
Wu, Han
Chen, Lei
Malinowski, Paul
Huang, Jianwei
Deng, Qinwen
Scott, Kirsty
Jang, Bo Gyu
Ruff, Jacob P. C.
He, Yu
Chen, Xiang
Hu, Chaowei
Yue, Ziqin
Oh, Ji Seop
Teng, Xiaokun
Guo, Yucheng
Klemm, Mason
Shi, Chuqiao
Shi, Yue
Setty, Chandan
Werner, Tyler
Hashimoto, Makoto
Lu, Donghui
Yilmaz, T.
Vescovo, Elio
Mo, Sung-Kwan
Fedorov, Alexei
Denlinger, Jonathan
Xie, Yaofeng
Gao, Bin
Kono, Junichiro
Dai, Pengcheng
Han, Yimo
Xu, Xiaodong
Birgeneau, Robert J.
Zhu, Jian-Xin
Neto, Eduardo H. da Silva
Wu, Liang
Chu, Jiun-Haw
Si, Qimiao
Yi, Ming
Source :
Nat Commun 15, 2739 (2024)
Publication Year :
2023

Abstract

The ability to reversibly toggle between two distinct states in a non-volatile method is important for information storage applications. Such devices have been realized for phase-change materials, which utilizes local heating methods to toggle between a crystalline and an amorphous state with distinct electrical properties. To expand such kind of switching between two topologically distinct phases requires non-volatile switching between two crystalline phases with distinct symmetries. Here we report the observation of reversible and non-volatile switching between two stable and closely-related crystal structures with remarkably distinct electronic structures in the near room temperature van der Waals ferromagnet Fe$_{5-\delta}$GeTe$_2$. From a combination of characterization techniques we show that the switching is enabled by the ordering and disordering of an Fe site vacancy that results in distinct crystalline symmetries of the two phases that can be controlled by a thermal annealing and quenching method. Furthermore, from symmetry analysis as well as first principle calculations, we provide understanding of the key distinction in the observed electronic structures of the two phases: topological nodal lines compatible with the preserved global inversion symmetry in the site-disordered phase, and flat bands resulting from quantum destructive interference on a bipartite crystaline lattice formed by the presence of the site order as well as the lifting of the topological degeneracy due to the broken inversion symmetry in the site-ordered phase. Our work not only reveals a rich variety of quantum phases emergent in the metallic van der Waals ferromagnets due to the presence of site ordering, but also demonstrates the potential of these highly tunable two-dimensional magnets for memory and spintronics applications.

Details

Database :
arXiv
Journal :
Nat Commun 15, 2739 (2024)
Publication Type :
Report
Accession number :
edsarx.2307.03154
Document Type :
Working Paper
Full Text :
https://doi.org/10.1038/s41467-024-46862-z