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Thermally Activated Circularly Polarized Photoluminescence in a 2D Hybrid Perovskite with Giant Spin Splitting

Publication ,  Journal Article
Phillips, AJ; Hight-Huf, N; Chakraborty, R; Reid, OG; Mitzi, DB; Blum, V; Sercel, PC; Blackburn, JL
Published in: Advanced Functional Materials
January 1, 2025

Circularly polarized light generation and detection are critical for future spin-based technologies that inter-convert circularly polarized photons and electron spins. However, detailed mechanisms in such spin-photon interfaces are often either poorly understood or operate at cryogenic temperatures since typically small energies separating spin-split electronic bands facilitate thermally driven spin depolarization. Recently, several 2D hybrid perovskites with polar achiral cations were theoretically demonstrated to exhibit conduction and valence band spin-splitting energies greatly exceeding room-temperature thermal energy, suggesting their utility as spin-photon interfaces with practical operating temperatures. Here, a strong “spin memory” effect is reported in such a polar achiral layered perovskite that enables large room-temperature circularly polarized emission anisotropy following excitation with circularly polarized light. The polarization anisotropy depends strongly on temperature (thermally activated), excitation energy, and crystal orientation with respect to the excitation source. Temperature-dependent photoconductance measurements reveal similar thermally activated carrier generation. These observations suggest a mechanism whereby giant in-plane splitting of single-particle levels protects spin-polarization of photogenerated electrons and holes before recombination. Although polarized light emission is explored in greater detail in chiral perovskites, these results reveal that even without chirality, large spin memory in polar achiral perovskites can enable spin-photon interfaces that operate at elevated temperatures.

Duke Scholars

Published In

Advanced Functional Materials

DOI

EISSN

1616-3028

ISSN

1616-301X

Publication Date

January 1, 2025

Related Subject Headings

  • Materials
  • 51 Physical sciences
  • 40 Engineering
  • 34 Chemical sciences
  • 09 Engineering
  • 03 Chemical Sciences
  • 02 Physical Sciences
 

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Phillips, A. J., Hight-Huf, N., Chakraborty, R., Reid, O. G., Mitzi, D. B., Blum, V., … Blackburn, J. L. (2025). Thermally Activated Circularly Polarized Photoluminescence in a 2D Hybrid Perovskite with Giant Spin Splitting. Advanced Functional Materials. https://doi.org/10.1002/adfm.202517358
Phillips, A. J., N. Hight-Huf, R. Chakraborty, O. G. Reid, D. B. Mitzi, V. Blum, P. C. Sercel, and J. L. Blackburn. “Thermally Activated Circularly Polarized Photoluminescence in a 2D Hybrid Perovskite with Giant Spin Splitting.” Advanced Functional Materials, January 1, 2025. https://doi.org/10.1002/adfm.202517358.
Phillips AJ, Hight-Huf N, Chakraborty R, Reid OG, Mitzi DB, Blum V, et al. Thermally Activated Circularly Polarized Photoluminescence in a 2D Hybrid Perovskite with Giant Spin Splitting. Advanced Functional Materials. 2025 Jan 1;
Phillips, A. J., et al. “Thermally Activated Circularly Polarized Photoluminescence in a 2D Hybrid Perovskite with Giant Spin Splitting.” Advanced Functional Materials, Jan. 2025. Scopus, doi:10.1002/adfm.202517358.
Phillips AJ, Hight-Huf N, Chakraborty R, Reid OG, Mitzi DB, Blum V, Sercel PC, Blackburn JL. Thermally Activated Circularly Polarized Photoluminescence in a 2D Hybrid Perovskite with Giant Spin Splitting. Advanced Functional Materials. 2025 Jan 1;
Journal cover image

Published In

Advanced Functional Materials

DOI

EISSN

1616-3028

ISSN

1616-301X

Publication Date

January 1, 2025

Related Subject Headings

  • Materials
  • 51 Physical sciences
  • 40 Engineering
  • 34 Chemical sciences
  • 09 Engineering
  • 03 Chemical Sciences
  • 02 Physical Sciences