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December 5, 2025ACS Applied Materials & Interfaces4 citationsOpen Access

Scalable Solution-Processed Electrolyte Membranes with Optimized Microstructure for High-Performance Protonic Ceramic Electrochemical Cells

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SZShuanglin ZhengJRJiufeng RuanYGYuqi Geng

Key Points

  • Electrolyte microstructure optimization led to improved performance in protonic ceramic electrochemical cells
  • The new method achieved a performance increase of about 31% compared to spray-based fabrication techniques
  • Solution-processed deposition utilized tailored particle size distribution and drying dynamics for electrolyte formation
  • This scalable approach may facilitate advances in hydrogen production technologies while maintaining mechanical integrity.

Abstract

Proton-conducting electrochemical cells (PCECs) are promising for efficient hydrogen production, but achieving dense, uniform, thin electrolyte layers remains a key challenge, particularly for scalable fabrication. Here, we present a solution-processed deposition approach with a mechanistically optimized slurry for uniform electrolyte formation. By tailoring particle size distribution, solid loading, and solvent/additive balance, we regulated wetting behavior and evaporation kinetics of the electrolyte slurry to promote homogeneous electrolyte particle packing. These features facilitate tight grain boundary contact and early stage neck growth during sintering, eliminating residual porosity, and improving mechanical integrity. The resulting ∼15 μm thick electrolyte shows high density, strong electrode adhesion, and stable interfaces outperforming the previously reported spray-based fabricated electrolyte by about 31% at 600 °C in FC mode. Single cells deliver 0.962 W cm-2 at 600 °C in fuel cell mode and 1.31 A cm-2 at 1.3 V in electrolysis mode, maintaining robust performance over 100 h with negligible degradation (≤0.02% h-1) in each mode. Scale-up to 2.5 cm diameter substrates confirmed reproducible densification and geometric stability. This work demonstrates a cost-effective, scalable route where control over particle-fluid interactions and drying dynamics enables a superior electrolyte microstructure and high PCEC performance.

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Cite This Study

Zheng et al. (2025) studied this question.

synapsesocial.com/papers/6932311e8e51979591dce241https://doi.org/10.1021/acsami.5c16287
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