Covalent Tridentate Molecule Anchoring Enhances Nickel Oxide for Efficient Perovskite Solar Cells

Y Yu Wang Y Yu Feng H Hao Yang S Saisai Li K Kai Zhang Y Yanxing Feng (State Key Laboratory of Advanced Chemical Power Sources Frontiers Science Center for New Organic Matter Key Laboratory of Advanced Energy Materials Chemistry (Ministry of Education) College of Chemistry Nankai University Tianjin 300071 P.R. China) X Xue Han (State Key Laboratory of Advanced Chemical Power Sources, Frontiers Science Center for New Organic Matter, Key Laboratory of Advanced Energy Materials Chemistry (Ministry of Education), Academy for Advanced Interdisciplinary Studies, College of Chemistry) T Thamraa Alshahrani Q Qinyou An (State Key Laboratory of Advanced Technology for Materials Synthesis and Processing) X Xiaoye Wang H Hongshi Li (Shuimu BioSciences Ltd. F4, Bio² Innovation Center, Life Science Park) Y Yuanzhi Jiang M Mingjian Yuan

Abstract

Abstract Nickel oxide (NiO x ) is a promising hole transport material for perovskite solar cells, but its high surface defect density and energy level mismatch with perovskite limit device efficiency. Conventional organic surface modifiers, relying on weak hydrogen bonds or single covalent bonds, fail to anchor stably to NiO x , hindering their functional effectiveness. Here, A multidentate anchoring organic molecule, [4‐(trifluoromethyl)phenyl]triethoxysilane (3F‐PTES), is presented, forming robust tridentate covalent bonds with the NiO x surface and significantly enhances interfacial binding strength and surface coverage compared with conventional groups (e.g., carboxyl). As a result, the interfacial defect density is reduced by 2.5‐fold compared with carboxyl‐modified counterparts and significantly suppresses the deprotonation reaction between NiO x and perovskite, thereby greatly improving interfacial contact. The designed trifluoromethyl terminal group further enables precise tuning of NiO x energy levels, achieving near‐ideal band alignment with perovskite (energy offset Δ E = 0.01 eV). Incorporating this modified NiO x into inverted devices, a champion power conversion efficiency (PCE) of 26.47% is achieved, along with outstanding operational stability, retaining 97% of their initial efficiency after 1500 h of continuous operation under maximum power point tracking (65 °C, 60% relative humidity, AM 1.5G illumination, ISOS‐L‐3 protocol).

Article Details

Volume / Issue Vol. 37, Issue 42
Published October 01, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (13)

Y

Yu Wang

Y

Yu Feng

H

Hao Yang

S

Saisai Li

K

Kai Zhang

Y

Yanxing Feng

State Key Laboratory of Advanced Chemical Power Sources Frontiers Science Center for New Organic Matter Key Laboratory of Advanced Energy Materials Chemistry (Ministry of Education) College of Chemistry Nankai University Tianjin 300071 P.R. China

X

Xue Han

State Key Laboratory of Advanced Chemical Power Sources, Frontiers Science Center for New Organic Matter, Key Laboratory of Advanced Energy Materials Chemistry (Ministry of Education), Academy for Advanced Interdisciplinary Studies, College of Chemistry

T

Thamraa Alshahrani

Q

Qinyou An

State Key Laboratory of Advanced Technology for Materials Synthesis and Processing

X

Xiaoye Wang

H

Hongshi Li

Shuimu BioSciences Ltd. F4, Bio² Innovation Center, Life Science Park

Y

Yuanzhi Jiang

M

Mingjian Yuan