4.8 Article

A-site cation influence on the conduction band of lead bromide perovskites

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NATURE COMMUNICATIONS
卷 13, 期 1, 页码 -

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NATURE PORTFOLIO
DOI: 10.1038/s41467-022-31416-y

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资金

  1. Bundesministerium fur Bildung und Forschung [FKZ 05K13UK1, FKZ 05K14PP1]
  2. EU [730872]
  3. Swedish Research Council [2018-05525, 2018-06465, 2018-04330, 2018-05973]
  4. Swedish Energy Agency [P50636, 2017-006797]
  5. Department of Atomic Energy, Government of India [RTI 4007]
  6. Science and Engineering Research Board India core research grant [CRG/2020/003877]
  7. Swarna Jayanti Fellowship, DST, India
  8. European Union's Horizon 2020 Research and Innovation programme under the Marie Skodowska-Curie grant [860553]
  9. Swedish Research Council [2018-04330, 2018-06465, 2018-05525] Funding Source: Swedish Research Council
  10. Vinnova [2018-04330] Funding Source: Vinnova

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This study uncovers a previously hidden feature in the conduction band states of lead halide perovskites and finds that it is strongly influenced by the strength of electronic coupling between the A-cation and bromide-lead sublattice. The findings provide an alternative mechanism for understanding slow hot carrier cooling and emphasize the optoelectronic role of the A-cation.
Hot carrier solar cells hold promise for exceeding the Shockley-Queisser limit. Slow hot carrier cooling is one of the most intriguing properties of lead halide perovskites and distinguishes this class of materials from competing materials used in solar cells. Here we use the element selectivity of high-resolution X-ray spectroscopy and density functional theory to uncover a previously hidden feature in the conduction band states, the sigma-pi energy splitting, and find that it is strongly influenced by the strength of electronic coupling between the A-cation and bromide-lead sublattice. Our finding provides an alternative mechanism to the commonly discussed polaronic screening and hot phonon bottleneck carrier cooling mechanisms. Our work emphasizes the optoelectronic role of the A-cation, provides a comprehensive view of A-cation effects in the crystal and electronic structures, and outlines a broadly applicable spectroscopic approach for assessing the impact of chemical alterations of the A-cation on perovskite electronic structure. The A-cation influence on the mechanism of slow hot carrier cooling in perovskites is controversial. Here, Man et al. resolve a debated issue regarding A-cation influence on the electronic structure of lead halide perovskites.

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