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Pressure-induced modification of the anomalous Hall effect in layered Fe3GeTe2

  • Xiangqi Wang
  • , Zeyu Li
  • , Min Zhang
  • , Tao Hou
  • , Jinggeng Zhao
  • , Lin Li
  • , Azizur Rahman
  • , Zilong Xu
  • , Junbo Gong
  • , Zhenhua Chi
  • , Rucheng Dai
  • , Zhongping Wang
  • , Zhenhua Qiao
  • , Zengming Zhang
  • University of Science and Technology of China
  • CAS - Institute of Solid State Physics

Research output: Contribution to journalArticlepeer-review

Abstract

We systematically investigate the influence of high pressure on the electronic transport properties of layered ferromagnetic materials; in particular, those of Fe3GeTe2. Its crystal sustains a hexagonal phase under high pressures up to 25.9 GPa, while the Curie temperature decreases monotonously with the increasing pressure. By applying appropriate pressures, the experimentally measured anomalous Hall conductivity, σxyA, can be efficiently controlled. Our theoretical study reveals that this finding can be attributed to the shift of the spin-orbit-coupling-induced splitting bands of Fe atoms. With loading compression, σxyA reaches its maximal value when the Fermi level lies inside the splitting bands and then attenuates when the splitting bands float above the Fermi level. Further compression leads to a prominent suppression of the magnetic moment, which is another physical cause of the decrease in σxyA at high pressure. These results indicate that the application of pressure is an effective approach in controlling the anomalous Hall conductivity of layered magnetic materials, which elucidates the physical mechanism of the large intrinsic anomalous Hall effect.

Original languageEnglish
Article number014407
JournalPhysical Review B
Volume100
Issue number1
DOIs
StatePublished - 3 Jul 2019

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