AI Article Synopsis

  • The transport of excitons in CsPbBr perovskite nanocrystals (NCs) is influenced by the history of exciton occupancy in those NCs.
  • Transient photoluminescence microscopy reveals that the apparent diffusivity of excitons increases with excitation laser power, which is not due to typical exciton interactions or thermal effects.
  • The study suggests that previously occupied NCs enter a long-lived state that enhances exciton transport, leading to high diffusivity rates and potentially informing the development of better optoelectronic devices.

Article Abstract

In semiconductors, exciton or charge carrier diffusivity is typically described as an inherent material property. Here, we show that the transport of excitons among CsPbBr perovskite nanocrystals (NCs) depends markedly on how recently those NCs were occupied by a previous exciton. Using transient photoluminescence microscopy, we observe a striking dependence of the apparent exciton diffusivity on excitation laser power that does not arise from nonlinear exciton-exciton interactions or thermal heating. We interpret our observations with a model in which excitons cause NCs to transition to a long-lived metastable configuration that markedly increases exciton transport. The exciton diffusivity observed here (>0.15 square centimeters per second) is considerably higher than that observed in other NC systems, revealing unusually strong excitonic coupling between NCs. The finding of a persistent enhancement in excitonic coupling may help explain other photophysical behaviors observed in CsPbBr NCs, such as superfluorescence, and inform the design of optoelectronic devices.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10881049PMC
http://dx.doi.org/10.1126/sciadv.adj2630DOI Listing

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