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January 6, 2026Membranes0 citationsOpen Access

Experimental Performances of Titanium Redox Electrodes as the Substitutes for the Ruthenium–Iridium Coated Electrodes Used in the Reverse Electrodialysis Cells for Hydrogen Production

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ZHZhaozhe HanXWXi WuLXLin Xu

Key Points

  • The study aims to evaluate titanium redox electrodes as substitutes for ruthenium–iridium-coated electrodes in reverse electrodialysis for hydrogen production.
  • Evaluated electrochemical performance of titanium electrodes experimentally in a reverse electrodialysis system.
  • Tested various parameters: ruthenium–iridium catalytic layer, operating temperature from 15 to 45 °C, electrode rinse solution concentrations from 0.1 to 0.7 M, and flow rates from 50 to 130 mL·min−1.
  • Employed a novel spike structure to enhance hydrogen bubble detachment.
  • Optimized titanium redox electrodes achieved 89.7% of hydrogen yield compared to traditional precious metal electrodes.
  • Electrode costs were reduced by more than 60% under optimal conditions.
  • The findings point to a viable economic alternative for enhancing reverse electrodialysis systems.

Abstract

Reverse electrodialysis (RED) enables the efficient conversion of the chemical potential difference between seawater and freshwater into electricity while simultaneously facilitating hydrogen production for integrated energy utilization. Nevertheless, the widespread deployment of RED remains constrained by the reliance on ruthenium–iridium-coated electrodes, which are expensive and resource-limited. This study proposes the adoption of titanium-based redox electrodes as a replacement for traditional precious metal electrodes and employs a novel spike structure to accelerate hydrogen bubble detachment. The electrochemical performance of titanium electrodes in an RED hydrogen production system was systematically evaluated experimentally. The influences of several parameters on the RED system performance were systematically examined under these operating conditions, including the ruthenium–iridium catalytic layer, operating temperature (15 to 45 °C), electrode rinse solution (ERS) concentration (0.1 to 0.7 M), and flow rate (50 to 130 mL·min−1). Experimental results demonstrate that optimized titanium redox electrodes maintain high electrocatalytic activity while significantly reducing system costs. Under optimal conditions, the hydrogen yield of the Ti redox electrode reached 89.7% of that achieved with the mesh titanium plate coated oxide iridium and oxide ruthenium as electrodes, while the electrode cost was reduced by more than 60%. This is also one of the cost-cutting solutions adopted by RED for its development.

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Cite This Study

Han et al. (2026) studied this question.

synapsesocial.com/papers/695d85413483e917927a4509https://doi.org/10.3390/membranes16010026
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