Water-oil interfacial kinetics control enables water-based organic solar cells with 12.59% certified efficiency

Organic solar cells (OSCs) are promising for clean-energy generation, but sustainable production remains constrained by hazardous organic solvents. Aqueous organic-semiconductor nanoparticle (NP) inks offer an environmentally friendly route to OSCs, yet low efficiency and limited stability hinder practical application. Here we report an interfacial-tension-mediated strategy that regulates NP structure and film formation. By tuning the liquid-liquid interfacial tension during NP synthesis, this strategy balances donor/acceptor segregation at the water/oil interface and converts a donor-dominated, highly ordered shell into a mixed polycrystalline surface region. The reconfigured surface promotes particle fusion, phase connectivity and packing uniformity, enhancing charge generation and transport while suppressing recombination. The resulting water-based OSCs achieve 12.64% efficiency (certified, 12.59%), surpassing the previous 11.1% benchmark for water-based OSCs, alongside a remarkable improvement in thermal stability and a T80 exceeding 2000 h at 85 °C. Interfacial-tension regulation thus provides a practical handle for NP structure control towards efficient, durable and sustainable printed photovoltaics. The practical applications of environmentally friendly water-based organic solar cells are hindered by low device performance. Bi et al. develop an interfacial-tension-mediated regulation strategy to improve nanoparticle-derived film formation, achieving a power conversion efficiency of 12.64%.

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Publication Details

Journal
Nature Communications
Published
2026-10-06
DOI
https://doi.org/10.1038/s41467-026-78233-1
Primary Topic
Organic Electronics and Photovoltaics
Type
article
Field-Weighted Citation Impact
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article

Water-oil interfacial kinetics control enables water-based organic solar cells with 12.59% certified efficiency

Qunping Fan, Zhaozhao Bi, Linlin An, Jie Min et al.
Nature Communications
Organic Electronics and Photovoltaics
article

Water-oil interfacial kinetics control enables water-based organic solar cells with 12.59% certified efficiency

Qunping Fan, Zhaozhao Bi, Linlin An, Jie Min, Jiawei Qiao, Xiaowei Zhan, Guilong Cai, Hairui Bai, Yubin Ke, Xiaotao Hao, Xinhui Lu, Wei Ma, Yabing Tang, Hanqiu Jiang, Rui Sun, Chao Zhao, Tengfei Li, Hua Yang, Chang Liu, Heng Liu, Ke Wang
article en

Abstract

Organic solar cells (OSCs) are promising for clean-energy generation, but sustainable production remains constrained by hazardous organic solvents. Aqueous organic-semiconductor nanoparticle (NP) inks offer an environmentally friendly route to OSCs, yet low efficiency and limited stability hinder practical application. Here we report an interfacial-tension-mediated strategy that regulates NP structure and film formation. By tuning the liquid-liquid interfacial tension during NP synthesis, this strategy balances donor/acceptor segregation at the water/oil interface and converts a donor-dominated, highly ordered shell into a mixed polycrystalline surface region. The reconfigured surface promotes particle fusion, phase connectivity and packing uniformity, enhancing charge generation and transport while suppressing recombination. The resulting water-based OSCs achieve 12.64% efficiency (certified, 12.59%), surpassing the previous 11.1% benchmark for water-based OSCs, alongside a remarkable improvement in thermal stability and a T80 exceeding 2000 h at 85 °C. Interfacial-tension regulation thus provides a practical handle for NP structure control towards efficient, durable and sustainable printed photovoltaics. The practical applications of environmentally friendly water-based organic solar cells are hindered by low device performance. Bi et al. develop an interfacial-tension-mediated regulation strategy to improve nanoparticle-derived film formation, achieving a power conversion efficiency of 12.64%.

Nature Communications
Shandong University (CN), Chinese University of Hong Kong (HK), Chinese Academy of Sciences (CN), Peking University (CN), Wuhan University (CN), China Spallation Neutron Source (CN), Institute of Process Engineering (CN), Institute of High Energy Physics (CN), State Key Laboratory of Crystal Materials, Xi'an Jiaotong University (CN)
Openalex Percentile: Top 22%
Organic Electronics and Photovoltaics
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