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March 21, 2026Environmental Science & Technology3 citations

Highly-Efficient Seawater Hydrogen Production via a Plug-and-Play Solar-Powered Membrane Distillation-Electrolysis System

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DFDejun FengLWLongchao WangYCYuanmiaoliang Chen

Key Points

  • The study aims to develop a highly efficient system for producing green hydrogen from seawater using solar energy.
  • Developed a plug-and-play solar-powered membrane distillation-electrolysis system.
  • Coupled photovoltaic panel, membrane distillation module, and proton-exchange membrane electrolyzer.
  • Conducted lab-scale experiments under varying conditions and performed thermodynamic analysis.
  • Achieved solar-to-hydrogen conversion efficiency of up to 23%.
  • Attained levelized cost of hydrogen as low as $1.70 per kg.
  • Maintained water consumption below 25% of the produced mass.
  • Demonstrated the integration of renewable energy systems can convert excess electricity into storable hydrogen.

Abstract

Reliance on fossil fuels and global freshwater scarcity challenge the sustainable production of green hydrogen (H2). Here, we introduce a plug-and-play solar-powered membrane distillation-electrolysis (SMDE) system for sustainable H2 production from seawater. The system is readily constructed by simply coupling a photovoltaic (PV) panel, a membrane distillation (MD) module, and a proton-exchange membrane (PEM) electrolyzer. Lab-scale experiments confirm the system's technical viability under varying conditions. Thermodynamic analysis further reveals that waste heat from the PV panel effectively drives the MD process, supplying sufficient freshwater for electrolysis while keeping water consumption below 25% of the produced mass. Compared to existing solar-powered seawater H2 production technologies, the SMDE system attains a high solar-to-hydrogen conversion efficiency (ηSTH) of up to 23% and a low levelized cost of H2 (LCOH) down to 1. 70 per kg, while offering superior technical maturity and operational durability. Moreover, by integrating MD and PEM electrolysis into renewable energy production systems, surplus electricity can be converted into storable H2, thereby addressing energy overcapacity. Overall, this work demonstrates that the rational integration of mature engineering technologies can overcome the complex challenges at the water-energy nexus.

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Cite This Study

Feng et al. (2026) studied this question.

synapsesocial.com/papers/69be35946e48c4981c673f01https://doi.org/10.1021/acs.est.5c11512
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