4.8 Article

Giant topological Hall effect in correlated oxide thin films

Journal

NATURE PHYSICS
Volume 15, Issue 1, Pages 67-+

Publisher

NATURE PUBLISHING GROUP
DOI: 10.1038/s41567-018-0307-5

Keywords

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Funding

  1. ERC Consolidator grant 'MINT' [615759]
  2. ANR project 'FERROMON'
  3. ANR as part of the 'Investissement d'Avenir' programme (LABEX NanoSaclay) through project 'FERROMOTT' [ANR-10-LABX-0035]
  4. ANR as part of the 'Investissement d'Avenir' programme (LABEX NanoSaclay) through project 'AXION' [ANR-10-LABX-0035]
  5. Spanish Government [MAT2014-56063-C2-1-R, MAT2017-85232-R]
  6. Spanish Government through Severo Ochoa [SEV-2015-0496]
  7. Generalitat de Catalunya [2014SGR 734]
  8. CNPq-Brazil
  9. University Paris-Saclay (D'Alembert programme)
  10. CNRS
  11. Office of Basic Energy Sciences, Division of Materials Sciences and Engineering, US Department of Energy [DE-SC0018153]
  12. JSPS KAKENHI [25400339, 15H05702, 17H02929]
  13. Program for Leading Graduate Schools 'Integrative Graduate Education and Research in Green Natural Sciences'
  14. [FPI BES-2012-059023]
  15. [16J05516]

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Strong electronic correlations can produce remarkable phenomena such as metal-insulator transitions and greatly enhance superconductivity, thermoelectricity or optical nonlinearity. In correlated systems, spatially varying charge textures also amplify magnetoelectric effects or electroresistance in mesostructures. However, how spatially varying spin textures may influence electron transport in the presence of correlations remains unclear. Here we demonstrate a very large topological Hall effect (THE) in thin films of a lightly electron-doped charge-transfer insulator, (Ca,Ce)MnO3. Magnetic force microscopy reveals the presence of magnetic bubbles, whose density as a function of magnetic field peaks near the THE maximum. The THE critically depends on carrier concentration and diverges at low doping, near the metal-insulator transition. We discuss the strong amplification of the THE by correlation effects and give perspectives for its non-volatile control by electric fields.

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