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All-in-One Deposition to Synergistically Manipulate Perovskite Growth for High-Performance Solar Cell
Author(s) -
Yifan Lv,
Hui Zhang,
Jinpei Wang,
Libao Chen,
Lifang Bian,
Zhongfu An,
Zongyao Qian,
Guoqi Ren,
Jie Wu,
Frank Nüesch,
Wei Huang
Publication year - 2020
Publication title -
research
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.8
H-Index - 16
ISSN - 2639-5274
DOI - 10.34133/2020/2763409
Subject(s) - perovskite (structure) , crystallization , passivation , deposition (geology) , materials science , perovskite solar cell , solar cell , chemical engineering , energy conversion efficiency , crystal (programming language) , nanotechnology , layer (electronics) , chemistry , crystallography , optoelectronics , computer science , paleontology , sediment , engineering , biology , programming language
Nonradiative recombination losses originating from crystallographic distortions and issues occurring upon interface formation are detrimental for the photovoltaic performance of perovskite solar cells. Herein, we incorporated a series of carbamide molecules (urea, biuret, or triuret) consisting of both Lewis base (–NH 2 ) and Lewis acid (–C=O) groups into the perovskite precursor to simultaneously eliminate the bulk and interface defects. Depending on the different coordination ability with perovskite component, the incorporated molecules can either modify crystallization dynamics allowing for large crystal growth at low temperature (60°C), associate with antisite or undercoordinated ions for defect passivation, or accumulate at the surface as an energy cascade layer to enhance charge transfer, respectively. Synergistic benefits of the above functions can be obtained by rationally optimizing additive combinations in an all-in-one deposition method. As a result, a champion efficiency of 21.6% with prolonged operational stability was achieved in an inverted MAPbI 3 perovskite solar cell by combining biuret and triuret additives. The simplified all-in-one fabrication procedure, adaptable to different types of perovskites in terms of pure MAPbI 3 , mixed perovskite, and all-inorganic perovskite, provides a cost-efficient and reproducible way to obtain high-performance inverted perovskite solar cells.

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