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Isothiourea-based buried interface modification for high-efficiency and stable perovskite solar cells


Citation

Tang, Zipeng and Wang, Chunlong and Ma, Chunying and Zou, Wenzhen and Wei, Chao and Shangguan, Xuanshuo and Zhou, Lu and Li, Xiaoyu and Ye, Yongchun and Gao, Liguo and Sulaiman, Yusran and Ma, Tingli and Zhang, Chu (2025) Isothiourea-based buried interface modification for high-efficiency and stable perovskite solar cells. Dalton Transactions, 54 (17). pp. 6858-6865. ISSN 1477-9226; eISSN: 1477-9234

Abstract

Oxygen-related defects including O vacancies and dangling O-H bonds in the SnO2 electron transport layer result in non-radiative carrier recombination, which directly affects the performance efficiency and stability of perovskite solar cells. Additionally, undercoordinated Pb2+ can also induce the non-radiative recombination of photogenerated carriers and provide a pathway for ion migration, leading to further degradation of solar cell performance. To tackle such issues, interface modification with multi-functional small molecules is usually considered to be a convenient way to inhibit non-radiative recombination and improve carrier transportation. Here, we employ two isothiourea bridge molecules, CESC (S-carboxyethyl isothiourea hydrochloride) and DASC (S-[2-(dimethylamino) ethyl] isothiourea dihydrochloride), to passivate the buried interface between SnO2 and perovskite, realizing dual-functional passivation towards both filling O2− vacancies in the SnO2 lattice and binding the uncoordinated ions. Perovskite solar cells fabricated with this method show highly improved optoelectronic performance and resistance against ambient moisture. Compared with that of the control device (17.20%), the efficiency of the devices modified with DASC and CESC increased to 18.75% and 19.04%, respectively. The unpackaged solar cells treated with CESC and DASC maintained 91.2% and 89.5% of their initial efficiency, respectively, after aging for 1000 hours in a high-humidity environment.


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Additional Metadata

Item Type: Article
Subject: Inorganic Chemistry
Divisions: Institute of Advanced Technology
DOI Number: https://doi.org/10.1039/d4dt03269a
Publisher: Royal Society of Chemistry
Keywords: Perovskite solar cells; Interface modification; Isothiourea; Electron transport layer; SnO2; Oxygen vacancies; Dangling bonds; Non-radiative recombination; Carrier transport; Device stability
Sustainable Development Goals (SDGs): SDG 7: Affordable and Clean Energy, SDG 9: Industry, Innovation and Infrastructure, SDG 13: Climate Action
Depositing User: MS. HADIZAH NORDIN
Date Deposited: 03 Jun 2026 04:58
Last Modified: 03 Jun 2026 04:58
Altmetrics: http://www.altmetric.com/details.php?domain=psasir.upm.edu.my&doi=10.1039/d4dt03269a
URI: http://psasir.upm.edu.my/id/eprint/124396
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