Emerging intrinsic magnetism in two-dimensional materials: theory and applications

Возникающий собственный магнетизм в двумерных материалах: теория и применения
Songrui Wei, Xiaoqi Liao, Cong Wang, Jianwei Li, Han Zhang, Y. J. Zeng, Jiajun Linghu, Hao Jin, Yadong Wei
2020-12-01

Mermin–Wagner theoremintrinsic magnetismspintronicsspin–orbit couplingtwo-dimensional materials
Abstract The intrinsic magnetism has long been pursued in two-dimensional (2D) materials down to one-atomic layer thickness. But only very recently, the intrinsic magnetism of monolayer CrI 3 , Fe 3 GeTe 2 , FePS 3 , VSe 2 and bilayer Cr 2 Ge 2 Te 6 are verified in experiment by optical measurement, Raman spectrum and conventional magnetism measurement. Among them, the intralayer exchange interaction of FePS 3 is antiferromagnetic while all the others are ferromagnetic. Most of the ferromagnetic orders in these materials are induce by super exchange interaction. Monolayer Fe 3 GeTe 2 and VSe 2 exhibit metallic character while all the others are semiconductor or insulator. Stable spontaneous magnetization can exist in these monolayer 2D materials because of their strong anisotropy. The anisotropy is mostly from the strong spin–orbit coupling of heavy atoms (CrI 3 , Cr 2 Ge 2 Te 6 , Fe 3 GeTe 2 ). Asymmetric lattice distortion (FePS 3 ) or the increased density of state near Fermi level (VSe 2 ) may also contribute to the anisotropy. The relationship between anisotropy and stable spontaneous magnetization are discussed based on spin wave theory and Mermin-Wagner theorem. About the application, spintronics may be the most direct benefitted field. Considering the relationship between conductance and magnetic structure, the applications related with the transport property are also widely investigated. Similarly, as the coupling between spin, phonon and photon are prominent in these magnetic 2D materials, the applications based on the magnetocaloric effect and magneto-optic effect are promising. And these magnetic 2D materials may be also applied as catalyst in water-splitting or electrode of supercapacitor.
1
FePS3 exhibits antiferromagnetic intralayer exchange, whereas CrI3, Fe3GeTe2, VSe2, and Cr2Ge2Te6 exhibit ferromagnetic ordering, predominantly driven by superexchange interactions.
2
Intrinsic magnetism has been experimentally verified in monolayer CrI3, Fe3GeTe2, FePS3, VSe2, and bilayer Cr2Ge2Te6 using optical, Raman, and conventional magnetic measurements.
3
Magnetic two-dimensional materials show application potential in spintronics, transport devices, magnetocaloric and magneto-optic technologies, water-splitting catalysis, and supercapacitor electrodes.
4
Monolayer Fe3GeTe2 and VSe2 are metallic, while CrI3, FePS3, and Cr2Ge2Te6 are semiconducting or insulating.
5
Strong magnetic anisotropy enables stable spontaneous magnetization in these atomically thin materials; heavy-atom spin–orbit coupling is the main anisotropy source in several compounds.

intrinsically magnetic two-dimensional materials, including monolayer CrI3, Fe3GeTe2, FePS3, VSe2 and bilayer Cr2Ge2Te6

the mechanisms, anisotropy, magnetic ordering, stability of spontaneous magnetization, and application-relevant transport, magnetocaloric, magneto-optic, catalytic, and electrode properties of these materials

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2020-12-01
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Songrui Wei
Xiaoqi Liao
Cong Wang
Jianwei Li
Han Zhang
Y. J. Zeng
Jiajun Linghu
Hao Jin
Yadong Wei
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