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Achieving sustainability of greenhouses by integrating stable semi-transparent organic photovoltaicsZhao, Yepin; Li, Zongqi; Deger, Caner; Wang, Minhuan; Peric, Miroslav; Yin, Yanfeng; Meng, Dong; Yang, Wenxin; Wang, Xinyao; Xing, Qiyu; et al (, Nature Sustainability)
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Tan, Shaun; Huang, Tianyi; Yavuz, Ilhan; Wang, Rui; Yoon, Tae Woong; Xu, Mingjie; Xing, Qiyu; Park, Keonwoo; Lee, Do-Kyoung; Chen, Chung-Hao; et al (, Nature)
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Commins, Patrick; Al-Handawi, Marieh_B; Deger, Caner; Polavaram, Srujana; Yavuz, Ilhan; Rezgui, Rachid; Li, Liang; Houk, K_N; Naumov, Panče (, Journal of the American Chemical Society)
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Wang, Rui; Xue, Jingjing; Wang, Kai-Li; Wang, Zhao-Kui; Luo, Yanqi; Fenning, David; Xu, Guangwei; Nuryyeva, Selbi; Huang, Tianyi; Zhao, Yepin; et al (, Science)Surface trap–mediated nonradiative charge recombination is a major limit to achieving high-efficiency metal-halide perovskite photovoltaics. The ionic character of perovskite lattice has enabled molecular defect passivation approaches through interaction between functional groups and defects. However, a lack of in-depth understanding of how the molecular configuration influences the passivation effectiveness is a challenge to rational molecule design. Here, the chemical environment of a functional group that is activated for defect passivation was systematically investigated with theophylline, caffeine, and theobromine. When N-H and C=O were in an optimal configuration in the molecule, hydrogen-bond formation between N-H and I (iodine) assisted the primary C=O binding with the antisite Pb (lead) defect to maximize surface-defect binding. A stabilized power conversion efficiency of 22.6% of photovoltaic device was demonstrated with theophylline treatment.more » « less
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