Nature Communications (Jul 2024)

Light-induced Kondo-like exciton-spin interaction in neodymium(II) doped hybrid perovskite

  • Xudong Xiao,
  • Kyaw Zin Latt,
  • Jue Gong,
  • Taewoo Kim,
  • Justin G. Connell,
  • Yuzi Liu,
  • H. Christopher Fry,
  • John E. Pearson,
  • Owen S. Wostoupal,
  • Mengyuan Li,
  • Calvin Soldan,
  • Zhenzhen Yang,
  • Richard D. Schaller,
  • Benjamin T. Diroll,
  • Saw Wai Hla,
  • Tao Xu

DOI
https://doi.org/10.1038/s41467-024-50196-1
Journal volume & issue
Vol. 15, no. 1
pp. 1 – 10

Abstract

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Abstract Tuning the properties of a pair of entangled electron and hole in a light-induced exciton is a fundamentally intriguing inquiry for quantum science. Here, using semiconducting hybrid perovskite as an exploratory platform, we discover that Nd2+-doped CH3NH3PbI3 (MAPbI3) perovskite exhibits a Kondo-like exciton-spin interaction under cryogenic and photoexcitation conditions. The feedback to such interaction between excitons in perovskite and the localized spins in Nd2+ is observed as notably prolonged carrier lifetimes measured by time-resolved photoluminescence, ~10 times to that of pristine MAPbI3 without Nd2+ dopant. From a mechanistic standpoint, such extended charge separation states are the consequence of the trap state enabled by the antiferromagnetic exchange interaction between the light-induced exciton and the localized 4 f spins of the Nd2+ in the proximity. Importantly, this Kondo-like exciton-spin interaction can be modulated by either increasing Nd2+ doping concentration that enhances the coupling between the exciton and Nd2+ 4 f spins as evidenced by elongated carrier lifetime, or by using an external magnetic field that can nullify the spin-dependent exchange interaction therein due to the unified orientations of Nd2+ spin angular momentum, thereby leading to exciton recombination at the dynamics comparable to pristine MAPbI3.