4.8 Article

Frenkel Excitons in Vacancy-Ordered Titanium Halide Perovskites (Cs2TiX6)

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出版社

AMER CHEMICAL SOC
DOI: 10.1021/acs.jpclett.2c02436

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资金

  1. EPSRC Centre for Doctoral Training in the Advanced Characterisation of Materials (CDT-ACM) [EP/S023259/1]
  2. Department of Chemistry at UCL
  3. Ramsay Memorial Fellowship Trust
  4. EPSRC [EP/N01572X/1, EP/L000202, EP/R029431, EP/T022213, EP/P020194]
  5. European Research Council, ERC [758345]
  6. European Research Council (ERC) under the European Unions Horizon 2020 research and innovation program [725165]
  7. European Unions Horizon 2020 research and innovation program under Marie Skodowska-Curie Grant [713729]
  8. Spanish State Research Agency, through the Severo Ochoa Center of Excellence [CEX2019-000910-S]
  9. CERCA Programme/Generalitat de Catalunya
  10. Fundacio Mir-Puig
  11. Fundacio Joan Ribas Araquistain (FJRA)
  12. AEI/FEDER UE [EQC2019-005797-P]

向作者/读者索取更多资源

Perovskite-inspired materials have emerged as promising candidates for low-cost, nontoxic, and earth-abundant photovoltaic materials. However, theoretical investigations often overestimate the band gaps of these materials.
Low-cost, nontoxic, and earth-abundant photovoltaic materials are long-sought targets in the solar cell research community. Perovskite-inspired materials have emerged as promising candidates for this goal, with researchers employing materials design strategies including structural, dimensional, and compositional transformations to avoid the use of rare and toxic elemental constituents, while attempting to maintain high optoelectronic performance. These strategies have recently been invoked to propose Ti-based vacancy-ordered halide perovskites (A(2)TiX(6); A = CH3NH3, Cs, Rb, or K; X = I, Br, or Cl) for photovoltaic operation, following the initial promise of Cs2SnX6 compounds. Theoretical investigations of these materials, however, consistently overestimate their band gaps, a fundamental property for photovoltaic applications. Here, we reveal strong excitonic effects as the origin of this discrepancy between theory and experiment, a consequence of both low structural dimensionality and band localization. These findings have vital implications for the optoelectronic application of these compounds while also highlighting the importance of frontier-orbital character for chemical substitution in materials design strategies.

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