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  4. Unveiling the Role of Guanidinium for Enhanced Charge Extraction in Inverted Perovskite Solar Cells
 
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May 9, 2025
Journal Article
Title

Unveiling the Role of Guanidinium for Enhanced Charge Extraction in Inverted Perovskite Solar Cells

Abstract
The incorporation of guanidinium (Gua) cations has significantly enhanced the optoelectronic properties of various perovskite compositions. When combined with other A-site cations in perovskite solar cells (PSCs), Gua cations not only enhance the power conversion efficiency of the solar cells but often improve their overall stability. While most studies examining the impact of Gua focus on PSCs with the n-i-p (conventional) structure, fewer have investigated its effects on the mechanism and performance of the p-i-n (inverted) structure. We investigate how partially substituting A-site cations with Gua affects the performance of PSCs and the associated charge carrier dynamics. Enhanced performance is observed in Gua-substituted inverted PSCs, primarily due to improved short-circuit current density and fill factor values. Our spectroscopic and microscopic analyses reveal that these enhancements stem from accelerated charge transport within the perovskite layer combined with inhibited ion migration following Gua incorporation, attributed to the reduction of localized inhomogeneities, which also notably enhance device stability. Our findings elucidate the role of Gua in inverted PSCs, showing negligible impact on open-circuit voltage but significant improvement in charge extraction efficiency. This contrasts with previous reports on conventional structures, where performance enhancement is primarily attributed to trap state reduction, resulting in higher open-circuit voltage.
Author(s)
Xu, Weidong
Imperial College London
Min, Ganghong
Imperial College London
Kosasih, Felix Utama
University of Cambridge  
Dong, Yueyao
University College London  
Ge, Ziyuan
Imperial College London
Gu, Qichun
Imperial College London
Chen, Muzi
Imperial College London
Pacalaj, Richard A.
Imperial College London
Wang, Tong
Imperial College London
Webb, Thomas
Imperial College London
Du, Tian
Imperial College London
Righetto, Marcello
University College London  
He, Guanjie
University College London  
Hillenius, Mischa
Vrije Universiteit Amsterdam
Hauff, Elizabeth von  
Fraunhofer-Institut für Organische Elektronik, Elektronenstrahl- und Plasmatechnik FEP  
Divitini, Giorgio
University of Cambridge  
Ducati, Caterina
University of Cambridge  
McLachlan, Martyn A.
Imperial College London
Cacialli, Franco
University College London  
Haque, Saif A.
Imperial College London
Bakulin, Artem A.
Imperial College London
Durrant, James R.
Imperial College London
Lin, Chieh-Ting
National Chung Hsing University
Stranks, Samuel D.
University of Cambridge  
Macdonald, Thomas J.
Imperial College London
Journal
ACS energy letters  
Open Access
DOI
10.1021/acsenergylett.5c00469
Additional full text version
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Language
English
Fraunhofer-Institut für Organische Elektronik, Elektronenstrahl- und Plasmatechnik FEP  
Keyword(s)
  • Charge transport

  • Extraction

  • Perovskites

  • Solar Cells

  • Stability

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