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Enabling efficient water dissociation in bipolar membranes via collaborative amorphous carbon-TiO2 junction catalyst
Xin Xu1, Ping Gong1, Ruoying Wu1
1State Key Laboratory of Green Chemical Synthesis and Conversion, College of Chemical Engineering, Zhejiang University of Technology, Hangzhou 310014, China.
Abstract:
Water dissociation (WD) at the junction of bipolar membranes (BPMs) is the core step that governs their energy efficiency in electrodialysis and related electrochemical processes, yet practical design for non-noble WD catalysts and compatible anion-exchange layers (AELs) remain limited. Here, we demonstrate that simultaneously enhancing the electronic conductivity of catalyst and ion-exchange capacity of the AEL effectively accelerates WD kinetics and interfacial ion transport in BPMs. An earth-abundant WD catalyst based on N-doped amorphous carbon/TiO2 nanoparticles (N-ACNs/TiO2) is designed, where a conductive N-doped carbon framework provides efficient electron transport and nitrogen/oxygen-containing functional groups, while anatase TiO2 supplies hydroxyl-rich oxide surfaces for interfacial proton-transfer reactions. This junction is integrated with an in situ quaternized composite AEL that offers high water uptake and ion-exchange capacity. Assisted by our designed N-ACNs/TiO2 catalyst and AEM, the resulting BPM exhibits a low WD voltage (∼1.18 V at 100 mA cm-2) and <5% voltage fluctuation at 1000 A m-2 over 6 h in Na2SO4 bipolar membrane electrodialysis. These findings highlight that synergistic optimization of the junction catalyst and AEL architecture provides an effective and scalable interfacial engineering strategy for next-generation BPMs in acid-base electrosynthesis.
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