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n-Type polymer layers enable efficient, scalable, and thermally stable perovskite solar modules.

Created on 31 Jul 2026

Authors

Danpeng Gao, Jie Gong, Lei Yang, Ning Wang, Bohong Chang, Liangchen Qian, Francesco Vanin, Chunlei Zhang, Zexin Yu, Shuai Li, Jianqiu Gong, Zonglong Zhu

Published in

Science (New York, N.Y.). Volume 393. Issue 6810. Pages 498-503. Jul 30, 2026. Epub Jul 30, 2026.

Abstract

Fullerene-based electron transport layers (ETLs) used in inverted (p-i-n) perovskite solar cells face issues regarding cost, scalability, and instability, whereas highly stable inorganic oxides feature unfavorable energy alignment and enhance hysteresis, which reduce power conversion efficiency (PCE). We report a nonfullerene conjugated polymer, 2PB-T, that incorporates coplanar and electron-withdrawing perylene bisimide (PBI) units into its backbone. The PBI polymeric backbone and side-chain engineering address the instability of small-molecule ETLs by optimizing electron transport properties, film uniformity, and interfacial binding. Small-area devices achieved a champion PCE of 27.8%, with a certified maximum power point tracking (MPPT) efficiency of 27.3%. Perovskite modules with areas of 20.6 and 625 square centimeters reached PCEs of 24.4 and 22.5%, respectively. Small-area devices retained more than 98.6% of their initial PCE after 1752 hours of continuous MPPT at 85°C in air, and the 625-square-centimeter module maintained 96.9% of its initial PCE after 5900 hours of outdoor operation.

PMID:
42531404
Bibliographic data and abstract were imported from PubMed on 31 Jul 2026.

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