Multifunctional molecular modulators for perovskite solar cells with over 20% efficiency and high operational stability

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作者
Dongqin Bi
Xiong Li
Jovana V. Milić
Dominik J. Kubicki
Norman Pellet
Jingshan Luo
Thomas LaGrange
Pierre Mettraux
Lyndon Emsley
Shaik M. Zakeeruddin
Michael Grätzel
机构
[1] Ecole polytechnique fédérale de Lausanne,Laboratory for Photonics and Interfaces
[2] Huazhong University of Science and Technology,Michael Grätzel Center for Mesoscopic Solar Cells, Wuhan National Laboratory for Optoelectronics
[3] Ecole polytechnique fédérale de Lausanne,Laboratory for Magnetic Resonance
[4] College of Electronic Information and Optical Engineering,Institute of Photoelectronic Thin Film Devices and Technology
[5] Nankai University,undefined
[6] Interdisciplinary Centre for Electron Microscopy,undefined
[7] Molecular and Hybrid Materials Characterization Center,undefined
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摘要
Perovskite solar cells present one of the most prominent photovoltaic technologies, yet their stability, scalability, and engineering at the molecular level remain challenging. We demonstrate a concept of multifunctional molecular modulation of scalable and operationally stable perovskite solar cells that exhibit exceptional solar-to-electric power conversion efficiencies. The judiciously designed bifunctional molecular modulator SN links the mercapto-tetrazolium (S) and phenylammonium (N) moieties, which passivate the surface defects, while displaying a structure-directing function through interaction with the perovskite that induces the formation of large grain crystals of high electronic quality of the most thermally stable formamidinium cesium mixed lead iodide perovskite formulation. As a result, we achieve greatly enhanced solar cell performance with efficiencies exceeding 20% for active device areas above 1 cm2 without the use of antisolvents, accompanied by outstanding operational stability under ambient conditions.
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