4.7 Article

Hydrophobic π-conjugated organic small molecule as a multi-functional interface material enables efficient and stable perovskite solar cells

Journal

CHEMICAL ENGINEERING JOURNAL
Volume 430, Issue -, Pages -

Publisher

ELSEVIER SCIENCE SA
DOI: 10.1016/j.cej.2021.133065

Keywords

Perovskite Solar Cell; Stability; pi-conjugated; Defect passivation

Funding

  1. National Natural Science Foundation of China [21975264, 22065038]
  2. Key Project of Natural Science Foundation of Yunnan [KC10110419]
  3. High-Level Talents Introduction in Yunnan Province [C619300A010]
  4. Fund for Excellent Young Scholars of Yunnan [K264202006820]
  5. International Joint Research Center for Advanced Energy Materials of Yunnan Province [202003AE140001]
  6. Program for Excellent Young Talents of Yunnan University
  7. Major Science and Technology Project of Precious Metal Materials Genetic Engineering in Yunnan Province [2019ZE001-1, 202002AB080001-6]
  8. Beijing Natural Science Foundation [2191003]
  9. Youth Innovation Promotion Association CAS

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The novel pyrene-based organic material TAAPyr is introduced as a defect passivation layer and a protect layer against moisture for perovskite solar cells (PSCs) application, effectively decreasing surface defects and nonradiative recombination while enhancing carrier transport and power conversion efficiencies. The multi-functional pi-conjugated passivator TAAPyr shows potential in improving efficiency and stability of PSCs by promoting intermolecular face-to-face stacking and making the perovskite surface more hydrophobic.
Surface treatment of perovskite films with interface materials is an effective strategy to resolve trap-mediated nonradiative recombination toward high efficiency and stability of perovskite solar cells (PSCs). However, interface materials for multi-functional treatment have been rarely investigated in PSCs. In this work, a novel pyrene-based organic material (TAAPyr) is first introduced as a defect passivation layer and a protect layer against moisture for PSCs application. With the TAAPyr interfacial modification, both perovskite surface defects and nonradiative recombination are effectively decreased as well as the carrier transport in device is also enhanced, As a consequence, the best power conversion efficiencies (PCE) up to 22.45% for TAAPyr-based device was obtained, clearly outperforming the control one (20.37%). Moreover, it was found that the pi-conjugated TAAPyr can promote intermolecular face-to-face stacking on the surface perovskite film, which is favorable to making the perovskite surface more hydrophobic and consequently enhance PSCs long-term stability. The unencapsulated PSCs can retain 92% of the initial PCE after storage for 600 h at similar to 65% RH, in comparison with 64% efficiency retention of the device without TAAPyr under the same conditions. This work presents a new strategy to enhance the efficiency and stability of PSCs by multi-functional pi-conjugated passivator.

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