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◆ Small2026-01-12· Iodide

Multifunctional Cellulose Derivative Enables Efficient and Stable Wide‐Bandgap Perovskite Solar Cells by Inhibiting Ion Migration

Chaoqi Liu, Chu Jun, Xixi Yu, Xiuhua Chen, Tao Zhu, Shaoyuan Li, Zhongqiu Tong, Wenhua Zhang, Wenhui Ma

原始摘要(英文原文)· Original abstract
ABSTRACT Wide‐bandgap (>1.65 eV) perovskites, characterized by their high bromine content, are plagued by severe photo‐induced phase segregation, which inflicts irreversible damage on device performance and stability. A primary origin of this degradation is the migration of iodide ions (I − ) and their subsequent conversion to molecular iodine (I 2 ) under photothermal stress, leading to irreversible performance loss. To address this critical challenge, we report a novel hydrophobically modified cellulose derivative, L12‐CMCNa, that through interfacial engineering, markedly enhances the performance and stability of 1.68 eV wide‐bandgap perovskite solar cells (PSCs). The functional groups (‐COO − and ‐OH) of L12‐CMCNa anchor at the interface, suppressing iodide ion migration by passivating both uncoordinated Pb 2 + defects and iodide vacancies. Concurrently, L12‐CMCNa reacts with residual PbI 2 to form an in situ low‐dimensional perovskite capping layer. This dual‐passivation strategy, combining defect anchoring with the formation of a low‐dimensional perovskite barrier, synergistically immobilizes ions at the interface. Consequently, the L12‐CMCNa‐modified devices deliver a champion power conversion efficiency (PCE) of 23.25% with a fill factor (FF) of 83.80%. Furthermore, the modified devices exhibit exceptional stability. In accordance with ISOS protocols, the unencapsulated devices maintained over 90% of their initial efficiency after 1000 h of continuous one‐sun operation (ISOS‐L‐1I), 800 h of storage at 30% relative humidity (ISOS‐D‐1), and 1000 h of aging at 65°C (ISOS‐D‐2I), placing them among the most stable 1.68 eV WBG PSCs reported to date.
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Multifunctional Cellulose Derivative Enables Efficient and Stable Wide‐Bandgap Perovskite Solar Cells by Inhibiting Ion Migration — 科研速览 Science Skim