4.8 Article

Crown Ether Modulation Enables over 23% Efficient Formamidinium-Based Perovskite Solar Cells

期刊

JOURNAL OF THE AMERICAN CHEMICAL SOCIETY
卷 142, 期 47, 页码 19980-19991

出版社

AMER CHEMICAL SOC
DOI: 10.1021/jacs.0c08592

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资金

  1. European Union's Horizon 2020 research and innovation program GRAPHENE Flagship Core 3 Grant [881603]
  2. Espresso [764047]
  3. SNSF [200020-185092, 193174]
  4. NCCR-MUST
  5. SINERGIA interdisciplinary research program EPISODE
  6. DOE Office of Science [DE-AC0206CH11357]
  7. Swiss National Science Foundation [200020-178860]
  8. Natural Sciences and Engineering Research Council of Canada
  9. Ministry of Science and Technology, Taiwan [MOST 108-2917-I-564-038, 108-2221-E-007-102-MY3]
  10. European Union's Horizon 2020 Research and Innovation program under the Marie Sklodowska-Curie Grant [838686, 843453]
  11. Swiss National Science Foundation R'Equip program [183305]
  12. 2019 New Partnership Program [1082911-I-002-561]
  13. Swiss Nationals Science Foundation [IZLCZ2-170294]
  14. Gebert Ruf Stiftung under Microbials scheme 'Solar-Bio Fuels' [GRS-080/19]
  15. Marie Curie Actions (MSCA) [843453, 838686] Funding Source: Marie Curie Actions (MSCA)
  16. Swiss National Science Foundation (SNF) [IZLCZ2_170294] Funding Source: Swiss National Science Foundation (SNF)

向作者/读者索取更多资源

The use of molecular modulators to reduce the defect density at the surface and grain boundaries of perovskite materials has been demonstrated to be an effective approach to enhance the photovoltaic performance and device stability of perovskite solar cells. Herein, we employ crown ethers to modulate perovskite films, affording passivation of undercoordinated surface defects. This interaction has been elucidated by solid-state nuclear magnetic resonance and density functional theory calculations. The crown ether hosts induce the formation of host-guest complexes on the surface of the perovskite films, which reduces the concentration of surface electronic defects and suppresses nonradiative recombination by 40%, while minimizing moisture permeation. As a result, we achieved substantially improved photovoltaic performance with power conversion efficiencies exceeding 23%, accompanied by enhanced stability under ambient and operational conditions. This work opens a new avenue to improve the performance and stability of perovskite-based optoelectronic devices through supramolecular chemistry.

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