Jine Wu, Jiafeng Lei, Yi‐Chun Lu
Abstract Zinc‐based flow batteries are promising for sustainable energy storage owing to their high energy density and eco‐friendliness. When coupling with Mn 2+ /MnO 2 posolyte, the zinc‐manganese flow batteries promise an ultra‐low electrolyte cost (0.0039 $ Ah −1 ). However, their practical application is limited by low areal capacity (<20 mAh cm −2 ) and poor lifespan (<100 cycles with accumulated capacity < 2000 mAh cm −2 ), associated with proton crossover and zinc dendrite formation. To address the two bottlenecks, an ion‐regulating membrane with surface‐enriched positive charges of Zn 2+ crosslinked networks is proposed. The enriched‐charged networks amplify H⁺ retention (60% elevated proton transport barrier to 0.104 eV) via imposing charge‐enhanced dehydration barriers and nitrogen‐groups synergism, leveraging the higher ionic potential of protons to discriminate the conduction ions (K + ). Simultaneously, the surface charges electrostatically guide the uniform distribution of near‐electrode zinc ions for zinc‐oriented growth without dendrites. The synergistic strategy achieves a near‐neutral zinc‐manganese flow system with a record accumulated capacity of 6510 mAh cm −2 (>200 cycles) at 30 mA cm −2 , high areal capacity of 100 mAh cm −2 (130.1 mWh cm −2 ) at 20 mA cm −2 , representing one of the most stable zinc‐manganese flow batteries reported. This study provides an effective membrane design strategy for low‐cost and high‐energy‐density zinc‐based flow batteries.