Three-dimensional distribution of amino groups improves perovskite crystallization and defect passivation in high-performance photovoltaics

X Xiaoqing Jiang G Guangyue Yang B Bingqian Zhang (State Key Laboratory of Photoelectric Conversion and Utilization of Solar Energy, Qingdao New Energy Shandong Laboratory, Qingdao Institute of Bioenergy and Bioprocess Technology) Y Yu Lei P Panyu Wang N Na Shi (Department of Bioengineering, College of Life Sciences, Northwest A&F University) K Kaiwen Dong L Likai Zheng (Institut des Sciences et Ingenierie Chimiques) Y Yue Qiang S Shiwei Liu Z Zhongjin Shen M Marina Freitag C Chongwen Li S Shuping Pang (State Key Laboratory of Photoelectric Conversion and Utilization of Solar Energy, Qingdao New Energy Shandong Laboratory, Qingdao Institute of Bioenergy and Bioprocess Technology) M Mohammad Khaja Nazeeruddin X Xin Guo (School of Materials and Energy)

Abstract

Abstract Incorporating organic molecules with diverse functional groups to improve film quality has emerged as a crucial strategy for realizing high-performance perovskite solar cells (PSCs). Nevertheless, the role of spatial distribution of those functional groups in governing passivation efficacy and perovskite crystallization remains insufficiently investigated. Here, we introduce three amino-containing molecules, bis(4-aminophenyl)methane (2APM), tris(4-aminophenyl)methane (3APM) and tetrakis(4-aminophenyl)methane (4APM), featuring distinct spatial distributions of amino groups, into the perovskite precursor solution as in-situ regulators. Among them, 4APM exhibits the strongest interactions with PbI 2 and formamidinium iodide (FAI) by virtue of its three-dimensional (3D) distribution of amino groups, most effectively suppressing undercoordinated Pb 2+ defects and enhancing perovskite film crystallinity. As a result, PSCs incorporating 4APM achieve a stabilized power conversion efficiency (PCE) of 26.26%, while retaining over 95% of their initial efficiency after 1000 h of continuous operation at maximum power point under 1-sun illumination in a N 2 atmosphere at 65 °C. Furthermore, 4APM-based perovskite solar modules (PSMs) with an active area of 14.0 cm 2 deliver a PCE of 23.16%. Our findings underscore the critical role of functional group’s spatial distribution in the rational design of molecular passivators for perovskite photovoltaics.

Article Details

Volume / Issue Vol. 1, Issue 1
Published July 25, 2026
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (16)

X

Xiaoqing Jiang

G

Guangyue Yang

B

Bingqian Zhang

State Key Laboratory of Photoelectric Conversion and Utilization of Solar Energy, Qingdao New Energy Shandong Laboratory, Qingdao Institute of Bioenergy and Bioprocess Technology

Y

Yu Lei

P

Panyu Wang

N

Na Shi

Department of Bioengineering, College of Life Sciences, Northwest A&F University

K

Kaiwen Dong

L

Likai Zheng

Institut des Sciences et Ingenierie Chimiques

Y

Yue Qiang

S

Shiwei Liu

Z

Zhongjin Shen

M

Marina Freitag

C

Chongwen Li

S

Shuping Pang

State Key Laboratory of Photoelectric Conversion and Utilization of Solar Energy, Qingdao New Energy Shandong Laboratory, Qingdao Institute of Bioenergy and Bioprocess Technology

M

Mohammad Khaja Nazeeruddin

X

Xin Guo

School of Materials and Energy