Abstract
Small-molecule–based aqueous proton batteries using conjugated organic anodes and protons as charge carriers offer low cost, fast kinetics, and long cycle life, showing strong potential for next-generation energy storage. However, their performance is severely limited by insufficient interfacial charge transport kinetics and instability issues arising from molecular dissolution and shuttling. In this study, we develop a gradient-porous composite separator (GF-S-5) by modifying a glass fiber (GF) substrate with sulfonated polyether ether ketone (SPEEK). This separator combines the microporous structure of SPEEK with the mesoporous/macroporous characteristics of GF, enabling efficient and selective proton transport while effectively mitigating the shuttling issue of the organic small-molecule anode material, hexaazatrinaphthalene-2, 8, 14-tricarbonitrile (HATN-3CN). Experimental results indicate a reversible capacity of 262.2 mAh g−1 at 1 A g−1 and 98.8% capacity retention after 4000 cycles for the HATN-3CN‖MnO₂ battery with the GF-S-5 separator. Additionally, a high-mass-loading HATN-3CN anode (35.6 mg cm−2) is assembled into a pouch cell, which consistently yields a capacity of 1.03 Ah, corresponding to an energy density of 35.4 Wh kg−1 (based on the electrode stack mass), sufficient to power practical devices. This study offers a cost-effective separator engineering strategy for the advancement of high-performance, long-lifetime aqueous proton batteries toward practical applications.
| Original language | English |
|---|---|
| Article number | 177186 |
| Journal | Chemical Engineering Journal |
| Volume | 539 |
| DOIs | |
| State | Published - 1 Jul 2026 |
Keywords
- Aqueous proton batteries
- Composite separator
- Gradient-porous structure
- HATN-3CN
- Molecular shuttling suppression
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