Electron injection and defect passivation for high-efficiency mesoporous perovskite solar cells

Printable mesoscopic perovskite solar cells (p-MPSCs) do not require the added hole-transport layer needed in traditional p-n junctions but have also exhibited lower power conversion efficiencies of about 19%. We performed device simulation and carrier dynamics analysis to design a p-MPSC with mesop...

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Veröffentlicht in:Science (American Association for the Advancement of Science) 2024-03, Vol.383 (6688), p.1198-1204
Hauptverfasser: Liu, Jiale, Chen, Xiayan, Chen, Kaizhong, Tian, Wenming, Sheng, Yusong, She, Bin, Jiang, Youyu, Zhang, Deyi, Liu, Yang, Qi, Jianhang, Chen, Kai, Ma, Yongmin, Qiu, Zexiong, Wang, Chaoyang, Yin, Yanfeng, Zhao, Shengli, Leng, Jing, Jin, Shengye, Zhao, Wenshan, Qin, Yanyang, Su, Yaqiong, Li, Xiaoyu, Li, Xiaojiang, Zhou, Yang, Zhou, Yinhua, Ling, Furi, Mei, Anyi, Han, Hongwei
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Sprache:eng
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Zusammenfassung:Printable mesoscopic perovskite solar cells (p-MPSCs) do not require the added hole-transport layer needed in traditional p-n junctions but have also exhibited lower power conversion efficiencies of about 19%. We performed device simulation and carrier dynamics analysis to design a p-MPSC with mesoporous layers of semiconducting titanium dioxide, insulating zirconium dioxide, and conducting carbon infiltrated with perovskite that enabled three-dimensional injection of photoexcited electrons into titanium dioxide for collection at a transparent conductor layer. Holes underwent long-distance diffusion toward the carbon back electrode, and this carrier separation reduced recombination at the back contact. Nonradiative recombination at the bulk titanium dioxide/perovskite interface was reduced by ammonium phosphate modification. The resulting p-MPSCs achieved a power conversion efficiency of 22.2% and maintained 97% of their initial efficiency after 750 hours of maximum power point tracking at 55 ± 5°C.
ISSN:0036-8075
1095-9203
DOI:10.1126/science.adk9089