Synergistic effects of push-pull resonance molecules on passivation and charge dynamics in perovskite solar cells

被引:0
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作者
Xiaozhen Huang [1 ]
Zilong Zhang [2 ,3 ]
Yuheng Li [2 ,3 ]
Liangliang Zhang [1 ]
Can Wang [2 ,3 ]
Lusheng Liang [2 ,3 ]
Chi Li [2 ,3 ]
Chunming Liu [2 ,3 ]
Zhehong Zhou [4 ]
Ruidan Zhang [4 ]
Yue Wang [1 ]
Mingwei An [1 ]
Yang Wang [2 ,1 ]
Peng Gao [2 ,3 ]
机构
[1] Strait Institute of Flexible Electronics (SIFE, Future Technologies), Fujian Key Laboratory of Flexible Electronics, Fujian Normal University and Strait Laboratory of Flexible Electronics(SLoFE)
[2] State Key Laboratory of Structural Chemistry, Fujian Institute of Research on the Structure of Matter, Chinese Academy of Sciences
[3] Xiamen Key Laboratory of Rare Earth Photoelectric Functional Materials, Xiamen Institute of Rare Earth Materials, Chinese Academy of Sciences
[4] College of Physics and Energy, Fujian Normal University, Fujian Provincial Key Laboratory of Quantum Manipulation and New Energy
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中图分类号
TM912 [蓄电池]; O647.1 [表面现象的理论];
学科分类号
摘要
Exploring multifunctional interfacial modifiers is an effective approach to addressing interface issues in perovskite solar cells(PSCs) and improving device performance and stability. While most interfacial modifiers focus on passivating defects at the interfaces, there has been limited investigation into the relationship between molecular design and interfacial charge dynamics. This work introduces resonance molecules with a push-pull effect for interfacial modification, allowing for synergistic regulation of passivation effects and charge dynamics. Specifically, FCz-PO, which includes an electron-withdrawing fluorine atom, exhibits superior passivation but poor molecular stacking and charge extraction. In contrast, MCz-PO, featuring an electron-donating methoxy group, provides effective passivation, wellordered molecular packing, and efficient charge extraction and transport. Consequently, PSCs using MCz-PO achieve high power conversion efficiency(PCE) of 24.74% and excellent operational stability.This study suggests that resonance structures can be an effective molecular design strategy for developing interfacial modifiers with both strong passivation capabilities and well-regulated charge dynamics.
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页码:422 / 430
页数:9
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