Proton Transfer‐Hydrogen Bonds Network for Highly Efficient and Stable Inverted Perovskite Solar Cells

Y Yiting Zheng (State Key Laboratory of Flexible Electronics (LoFE) and Institute of Advanced Materials (IAM) School of Flexible Electronics (Future Technologies) Nanjing Tech University (Nanjing Tech) 30 South Puzhu Road Nanjing Jiangsu 211816 China) P Pingping Ma (State Key Laboratory of Flexible Electronics (LoFE) and Institute of Advanced Materials (IAM) School of Flexible Electronics (Future Technologies) Nanjing Tech University (Nanjing Tech) 30 South Puzhu Road Nanjing Jiangsu 211816 China) T Tingting Niu L Lingfeng Chao S Shijing Qian (State Key Laboratory of Flexible Electronics (LoFE) and Institute of Advanced Materials (IAM) School of Flexible Electronics (Future Technologies) Nanjing Tech University (Nanjing Tech) 30 South Puzhu Road Nanjing Jiangsu 211816 China) Y Yingdong Xia Y Yonghua Chen

Abstract

Abstract The development and application of self‐assembled monolayer (SAM) has revolutionized the advancement of inverted perovskite solar cells (PSCs). However, the performance of inverted PSCs remains limited by intrinsic defects in perovskite thin films, primarily due to inadequate control over crystallization on the poor‐quality SAM substrates. Here, we reported a proton transfer‐hydrogen bond network using a multifunctional additive phenylguanidine carbonate over a co‐adsorbed SAM (Co‐SAM) system. This strategy promoted the formation of guanidinium‐formamidinium hydrogen‐bonded complexes, which stabilize intermediate phases, suppress the generation of impurity phases during nucleation and accelerate the transition from δ‐phase to α‐phase. The significantly delayed crystallization process successfully induced large perovskite grains with suppressed intrinsic defects. Moreover, a high coverage, uniformity, and dense molecular packing was achieved for the Co‐SAM, ensuring an excellent growth substrate for subsequent perovskite deposition. PSCs ultimately achieved a power conversion efficiency (PCE) of 26.65%, with enhanced operational stability‐retaining 92.5% of initial PCE after >1200 h of maximum power point tracking.

Article Details

Volume / Issue Vol. 65, Issue 3
Published January 16, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (7)

Y

Yiting Zheng

State Key Laboratory of Flexible Electronics (LoFE) and Institute of Advanced Materials (IAM) School of Flexible Electronics (Future Technologies) Nanjing Tech University (Nanjing Tech) 30 South Puzhu Road Nanjing Jiangsu 211816 China

P

Pingping Ma

State Key Laboratory of Flexible Electronics (LoFE) and Institute of Advanced Materials (IAM) School of Flexible Electronics (Future Technologies) Nanjing Tech University (Nanjing Tech) 30 South Puzhu Road Nanjing Jiangsu 211816 China

T

Tingting Niu

L

Lingfeng Chao

S

Shijing Qian

State Key Laboratory of Flexible Electronics (LoFE) and Institute of Advanced Materials (IAM) School of Flexible Electronics (Future Technologies) Nanjing Tech University (Nanjing Tech) 30 South Puzhu Road Nanjing Jiangsu 211816 China

Y

Yingdong Xia

Y

Yonghua Chen