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Spectral dynamics of shift current in ferroelectric semiconductor SbSI

  • M. Sotome
  • , M. Nakamura
  • , J. Fujioka
  • , M. Ogino
  • , Y. Kaneko
  • , T. Morimoto
  • , Y. Zhang
  • , M. Kawasaki
  • , N. Nagaosa
  • , Y. Tokura
  • , N. Ogawa

Research output: Contribution to journalArticlepeer-review

121 Scopus citations

Abstract

Photoexcitation in solids brings about transitions of electrons/ holes between different electronic bands. If the solid lacks an inversion symmetry, these electronic transitions support spontaneous photocurrent due to the geometric phase of the constituting electronic bands: the Berry connection. This photocurrent, termed shift current, is expected to emerge on the timescale of primary photoexcitation process. We observe ultrafast evolution of the shift current in a prototypical ferroelectric semiconductor antimony sulfur iodide (SbSI) by detecting emitted terahertz electromagnetic waves. By sweeping the excitation photon energy across the bandgap, ultrafast electron dynamics as a source of terahertz emission abruptly changes its nature, reflecting a contribution of Berry connection on interband optical transition. The shift excitation carries a net charge flow and is followed by a swing over of the electron cloud on a subpicosecond timescale. Understanding these substantive characters of the shift current with the help of first-principles calculation will pave the way for its application to ultrafast sensors and solar cells.

Original languageEnglish
Pages (from-to)1929-1933
Number of pages5
JournalProceedings of the National Academy of Sciences of the United States of America
Volume116
Issue number6
DOIs
StatePublished - Feb 5 2019

Funding

ACKNOWLEDGMENTS. We thank D. Maryenko and W. Koshibae for stimulating discussions. This research is supported by Japan Society for the Promotion of Science (JSPS) KAKENHI Grants 18K14155, 24224009, 16H00981, and 17H02914. M.N., J.F. and N.O. are supported by PRESTO, Japan Science and Technology Agency Grants JPMJPR16R5 (to M.N.), JPMJPR15R5 (to J.F.), and JPMJPR17I3 (to N.O.). T.M. was supported by the Gordon and Betty Moore Foundation’s EPiQS Initiative Theory Center Grant (to University of California, Berkeley), and the Quantum Materials program at Lawrence Berkeley National Laboratory (LBNL) funded by the US Department of Energy under Contract DE-AC02-05CH11231. Y.Z. is supported by German Research Foundation Grant SFB 1143. N.N. is supported by JST CREST Grant JPMJCR16F1, Japan, and JSPS KAKENHI Grants 18H03676 and 26103001.

Keywords

  • Bulk matter
  • Ferroelectricity
  • Photovoltaic effect
  • Picosecond techniques
  • Solar cells

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