Structural Variations and Ionizing Radiation Hardness of Perovskite Solar Cells with Guanidinium Cation

Abstract Adding so-called oversized organic cations to lead-halide perovskites has emerged as a promising route to enhance the stability and efficiency of perovskite solar cells (PSCs). These additives can induce quasi-2D phases, yielding “2D–3D” hybrids. Here, we study methylammonium (MA) lead iodide PSCs incorporating guanidinium (GA) cations using ultrafast transient absorption, open-circuit voltage decay and X-ray diffraction, and we probe their robustness under proton, electron, and UV irradiation. In our best devices, those with limited GA+ content, nominally GA(MA)5Pb5I16, and employing SnO2 as the electron-transport layer, no quasi-2D signatures are detected. Instead, GA is incorporated into a 3D perovskite lattice without phase segregation. Devices built on TiO2 and/or exhibiting quasi-2D character show inferior performance, which we attribute to enhanced nonradiative charge recombination. Finally, irradiation studies reveal that GA-containing PSCs reveal remarkable resistance to ionizing damage, preserving optoelectronic quality and voltage retention, thereby underscoring their potential for space applications.

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Publication Details

Journal
ACS Applied Energy Materials
Published
2026-09-15
DOI
https://doi.org/10.1021/acsaem.6c02575
Primary Topic
Perovskite Materials and Applications
Type
article
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article

Structural Variations and Ionizing Radiation Hardness of Perovskite Solar Cells with Guanidinium Cation

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ACS Applied Energy Materials
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article

Structural Variations and Ionizing Radiation Hardness of Perovskite Solar Cells with Guanidinium Cation

Karol Załęski, Sanjay Sahare, Marcin Ziółek, Hryhorii P. Parkhomenko, М. Н. Солован, Emerson Coy, Viktor V. Brus, Andriy I. Mostovyi, Marat Kaikanov, Taras T. Kovaliuk
article en

Abstract

Abstract Adding so-called oversized organic cations to lead-halide perovskites has emerged as a promising route to enhance the stability and efficiency of perovskite solar cells (PSCs). These additives can induce quasi-2D phases, yielding “2D–3D” hybrids. Here, we study methylammonium (MA) lead iodide PSCs incorporating guanidinium (GA) cations using ultrafast transient absorption, open-circuit voltage decay and X-ray diffraction, and we probe their robustness under proton, electron, and UV irradiation. In our best devices, those with limited GA+ content, nominally GA(MA)5Pb5I16, and employing SnO2 as the electron-transport layer, no quasi-2D signatures are detected. Instead, GA is incorporated into a 3D perovskite lattice without phase segregation. Devices built on TiO2 and/or exhibiting quasi-2D character show inferior performance, which we attribute to enhanced nonradiative charge recombination. Finally, irradiation studies reveal that GA-containing PSCs reveal remarkable resistance to ionizing damage, preserving optoelectronic quality and voltage retention, thereby underscoring their potential for space applications.

ACS Applied Energy Materials
Yuriy Fedkovych Chernivtsi National University (UA), Illinois Institute of Technology (US), Charles University (CZ), University of Charleston (US), Adam Mickiewicz University in Poznań (PL), Nazarbayev University (KZ)
Affordable and clean energy
Openalex Percentile: Top 20%
Perovskite Materials and Applications
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