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Di‐Spiro‐Based Hole‐Transporting Materials for Highly Efficient Perovskite Solar Cells
Authors:Ke Gao  Bo Xu  Chaoshen Hong  Xueliang Shi  Hongbin Liu  Xiaosong Li  Linghai Xie  Alex K‐Y Jen
Institution:1. Department of Materials Science and Engineering, University of Washington, Seattle, WA, USA;2. Center for Molecular Systems and Organic Devices (CMSOD), Key Laboratory for Organic Electronics and Information Displays and Institute of Advanced Materials (IAM), Nanjing University of Posts and Telecommunications, Nanjing, China;3. Department of Chemistry, University of Washington, Seattle, WA, USA;4. Department of Chemistry, City University of Hong Kong, Kowloon, Hong Kong, China;5. Department of Materials Science & Engineering, City University of Hong Kong, Kowloon, Hong Kong, China
Abstract:Hole‐transporting materials (HTMs) are essential for enabling highly efficient perovskite solar cells (PVSCs) to extract and transport the hole carriers. Among numerous HTMs that are studied so far, the single‐spiro‐based compounds are the most frequently used HTMs for achieving highly efficient PVSCs. In fact, all the new spiro‐based HTMs reported so far that render PVSCs over 20% are based on spirofluorene‐9,9′‐xanthene] or spiro cyclopenta 2,1‐b:3,4b′]dithiophene‐4,9′‐fluorene] cores; therefore, there is a need to diversify the design of their structures for further improving their function and performance. In addition, the fundamental understanding of structure–performance relationships for the spiro‐based HTMs is still lagging, for example, how molecular configuration, spiro numbers, and heteroatoms in spiro‐rings impact the efficacy of HTMs. To address these needs, two novel H‐shaped HTMs, G1 and G2 based on the di‐spiro‐rings as the cores are designed and synthesized. The combined good film‐forming properties, better interactions with perovskite, slightly deeper highest occupied molecular orbital, higher mobility and conductivity, as well as more efficient charge transfer for G2 help devices reach a very impressive power conversion efficiency of 20.2% and good stability. This is the first report of demonstrating the feasibility of using di‐spiro‐based HTMs for highly efficient PVSCs.
Keywords:binding energy  di‐spiro  high efficiency  hole‐transporting materials  perovskite solar cells
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