Aminomethyl Phosphonic Acid as Highly Effective Multifunctional Additive for Modification of Electron Transport Layer and Perovskite in Photovoltaic Solar Cells

Y Yujie Gao W Wenyu Gong (Hebei Key Laboratory of Inorganic Nanomaterials Hebei Technology Innovation Center for Energy Conversion Materials and Devices Engineering Research Center of Thin Film Solar Cell Materials and Devices, Hebei Province College of Chemistry and Material Science, Hebei Normal University No. 20 Rd. East of 2nd Ring South, Yuhua District Shijiazhuang Hebei 050024 China) Z Zeqi Zhang (Hebei Key Laboratory of Inorganic Nanomaterials Hebei Technology Innovation Center for Energy Conversion Materials and Devices Engineering Research Center of Thin Film Solar Cell Materials and Devices, Hebei Province College of Chemistry and Material Science, Hebei Normal University No. 20 Rd. East of 2nd Ring South, Yuhua District Shijiazhuang Hebei 050024 China) J Jianing Guo J Jingyuan Ma (Shanghai Synchrotron Radiation Facility) X Xuan Li (Department of Chemistry) Y Yanli Zeng (Hebei Key Laboratory of Inorganic Nanomaterials Hebei Technology Innovation Center for Energy Conversion Materials and Devices Engineering Research Center of Thin Film Solar Cell Materials and Devices, Hebei Province College of Chemistry and Material Science, Hebei Normal University No. 20 Rd. East of 2nd Ring South, Yuhua District Shijiazhuang Hebei 050024 China) M Mingxing Wu

Abstract

AbstractThe passivation of detrimental perovskite‐based defects is critically acknowledged for fabricating highly effective perovskite solar cells (PSCs). The presence of a high‐quality electron transport layer (ETL) is also considered a pivotal factor for effective charge extraction and transport dynamics. Herein, a simple small organic molecule, aminomethyl phosphonic acid (AMPA), is introduced as a multifunctional additive in the SnO2 ETL. The defects in the SnO2 ETL are effectively suppressed by passivating the oxygen vacancies upon the SnO2 surface. Simultaneously, the carrier mobility and crystallinity of SnO2 are enhanced, and the upward‐regulated conduction band minimum (CBM) is beneficial for constructing a favorable energy level alignment with the perovskite layer. Notably, the introduced residuals on the SnO2 surface can function as crystalline seeds for growth of large perovskite grains, which can passivate the defects in the perovskite bulk phase, boundaries, as well as the SnO2/perovskite interface. Consequently, the power conversion efficiency (PCE) value of the AMPA‐modified PSCs is enhanced from 19.91% to 24.22%. Most importantly, the unencapsulated PSCs with AMPA maintained 94.9% of the initial PCE during 720 h of storage at a relative humidity of 10%, attributed to the improved hydrophobicity of both the SnO2 and perovskite layers after AMPA modification.

Article Details

Volume / Issue Vol. 64, Issue 23
Published June 02, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (8)

Y

Yujie Gao

W

Wenyu Gong

Hebei Key Laboratory of Inorganic Nanomaterials Hebei Technology Innovation Center for Energy Conversion Materials and Devices Engineering Research Center of Thin Film Solar Cell Materials and Devices, Hebei Province College of Chemistry and Material Science, Hebei Normal University No. 20 Rd. East of 2nd Ring South, Yuhua District Shijiazhuang Hebei 050024 China

Z

Zeqi Zhang

Hebei Key Laboratory of Inorganic Nanomaterials Hebei Technology Innovation Center for Energy Conversion Materials and Devices Engineering Research Center of Thin Film Solar Cell Materials and Devices, Hebei Province College of Chemistry and Material Science, Hebei Normal University No. 20 Rd. East of 2nd Ring South, Yuhua District Shijiazhuang Hebei 050024 China

J

Jianing Guo

J

Jingyuan Ma

Shanghai Synchrotron Radiation Facility

X

Xuan Li

Department of Chemistry

Y

Yanli Zeng

Hebei Key Laboratory of Inorganic Nanomaterials Hebei Technology Innovation Center for Energy Conversion Materials and Devices Engineering Research Center of Thin Film Solar Cell Materials and Devices, Hebei Province College of Chemistry and Material Science, Hebei Normal University No. 20 Rd. East of 2nd Ring South, Yuhua District Shijiazhuang Hebei 050024 China

M

Mingxing Wu