AI Article Synopsis

  • Long-term durability is essential for the success of perovskite solar cells (PSCs), as these cells are vulnerable to moisture damage due to their ionic nature and hydrophilic materials used in the hole-transporting layer.
  • A new trifluoromethylation strategy has been introduced using specific additives (TFMBAI and TFP) to improve the cells' moisture resistance and boost their solar to electric power conversion efficiency (PCE).
  • The combined use of these additives results in PSCs that not only achieve a significant increase in PCE (from 20.9% to 23.9%), but also maintain high operational stability, retaining over 96% efficiency after 500 hours of testing under simulated sunlight and over

Article Abstract

Long-term durability is critically important for the commercialization of perovskite solar cells (PSCs). The ionic character of the perovskite and the hydrophilicity of commonly used additives for the hole-transporting layer (HTL), such as lithium bis(trifluoromethanesulfonyl)imide (Li-TFSI) and -butylpyridine (BP), render PSCs prone to moisture attack, compromising their long-term stability. Here we introduce a trifluoromethylation strategy to overcome this drawback and to boost the PSC's solar to electric power conversion efficiency (PCE). We employ 4-(trifluoromethyl)benzylammonium iodide (TFMBAI) as an amphiphilic modifier for interfacial defect mitigation and 4-(trifluoromethyl)pyridine (TFP) as an additive to enhance the HTL's hydrophobicity. Surface treatment of the triple-cation perovskite with TFMBAI largely suppressed the nonradiative charge carrier recombination, boosting the PCE from 20.9% to 23.9% and suppressing hysteresis, while adding TFP to the HTL enhanced the PCS's resistance to moisture while maintaining its high PCE. Taking advantage of the synergistic effects resulting from the combination of both fluoromethylated modifiers, we realize TFMBAI/TFP-based highly efficient PSCs with excellent operational stability and resistance to moisture, retaining over 96% of their initial efficiency after 500 h maximum power point tracking (MPPT) under simulated 1 sun irradiation and 97% of their initial efficiency after 1100 h of exposure under ambient conditions to a relative humidity of 60-70%.

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Source
http://dx.doi.org/10.1021/jacs.0c12802DOI Listing

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