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Local symmetry breaking drives picosecond spin domain formation in polycrystalline halide perovskite films

Title
Local symmetry breaking drives picosecond spin domain formation in polycrystalline halide perovskite films
Author(s)
Ashoka, ArjunNagane, SatyawanStrkalj, NivesSharma, AshishRoose, BartSneyd, Alexander J.Sung, JooyoungMacManus-Driscoll, Judith L.Stranks, Samuel D.Feldmann, SaschaRao, Akshay
Issued Date
2023-08
Citation
Nature Materials, v.22, no.8, pp.977 - 984
Type
Article
Keywords
RASHBA
ISSN
1476-1122
Abstract
Photoinduced spin–charge interconversion in semiconductors with spin–orbit coupling could provide a route to optically addressable spintronics without the use of external magnetic fields. However, in structurally disordered polycrystalline semiconductors, which are being widely explored for device applications, the presence and role of spin-associated charge currents remains unclear. Here, using femtosecond circular-polarization-resolved pump–probe microscopy on polycrystalline halide perovskite thin films, we observe the photoinduced ultrafast formation of spin domains on the micrometre scale formed through lateral spin currents. Micrometre-scale variations in the intensity of optical second-harmonic generation and vertical piezoresponse suggest that the spin-domain formation is driven by the presence of strong local inversion symmetry breaking via structural disorder. We propose that this leads to spatially varying Rashba-like spin textures that drive spin-momentum-locked currents, leading to local spin accumulation. Ultrafast spin-domain formation in polycrystalline halide perovskite films provides an optically addressable platform for nanoscale spin-device physics. © 2023, The Author(s), under exclusive licence to Springer Nature Limited.
URI
http://hdl.handle.net/20.500.11750/47583
DOI
10.1038/s41563-023-01550-z
Publisher
Nature Publishing Group
Related Researcher
  • 성주영 Sung, Jooyoung
  • Research Interests Nanostructured Semiconductor Materials; Advanced Organic Materials; Optoelectronic Properties; Time/Space-resolved Spectroscopy
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Department of Physics and Chemistry FemtoLab for Advanced Energy Materials 1. Journal Articles

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