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Dual-functional hydrazide–indole additive for boosting efficiency and stability in perovskite solar cells

2026/01/16 by Zhuo Peng, Han Wang, Jiazhi Meng +8 · 1 voice
Energy · Engineering · #Organic Light-Emitting Diodes Research #Perovskite Materials and Applications #TiO2 Photocatalysis and Solar Cells

paper · pdf · doi:10.26599/emd.2026.9370088

openalex publication_date 2026/01/16 · openalex created_date 2026/01/17 · openalex updated_date 2026/07/31

Abstract

Perovskite solar cells (PSCs) have attracted considerable attention as next-generation photovoltaic technologies owing to their solution processability, low weight, and mechanical flexibility. Despite rapid progress, defect-induced nonradiative recombination remains a major obstacle, hindering further improvements in device efficiency and operational stability. In this work, we introduce 1H-indole-3-carbohydrazide (1H-CBH) as a multifunctional molecular additive that effectively mitigates these issues through synergistic defect passivation. Specifically, 1H-CBH simultaneously coordinates with undercoordinated Pb<sup>2+</sup> ions and forms hydrogen bonds with uncoordinated I<sup>-</sup> ions and formamidinium (FA<sup>+</sup>) cations. This dual interaction strategy promotes larger grain growth, reduces grain boundary defect density, and enhances interfacial compatibility with the electron-transport layer (ETL), thereby enabling improved charge transport. As a result, the incorporation of 1H-CBH into mixed-cation PSCs yields a remarkable enhancement in power conversion efficiency (PCE) from 21.18% to 23.59%. Moreover, the 1H-CBH-modified devices demonstrated exceptional environmental stability, retaining their initial morphology after 8 months under ambient conditions (25 ℃, 50-80% relative humidity), whereas unpassivated counterparts underwent complete degradation. Under inert N<sub>2</sub> atmosphere, PSCs incorporating 1H-CBH maintained &gt;80% of their initial PCE after 600 h continuous storage. These results highlight the critical role of multifunctional additive engineering in achieving highly efficient and durable perovskite solar cells, paving the way toward scalable and reliable photovoltaic technologies.

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