Rechargeable aqueous zinc-manganese dioxide batteries with high energy and power densities.

Zhang, Ning; Cheng, Fangyi; Liu, Junxiang; Wang, Liubin; Long, Xinghui; Liu, Xiaosong; Li, Fujun; Chen, Jun · Nat Commun · 2017

basic_science · Level V

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Abstract

Although alkaline zinc-manganese dioxide batteries have dominated the primary battery applications, it is challenging to make them rechargeable. Here we report a high-performance rechargeable zinc-manganese dioxide system with an aqueous mild-acidic zinc triflate electrolyte. We demonstrate that the tunnel structured manganese dioxide polymorphs undergo a phase transition to layered zinc-buserite on first discharging, thus allowing subsequent intercalation of zinc cations in the latter structure. Based on this electrode mechanism, we formulate an aqueous zinc/manganese triflate electrolyte that enables the formation of a protective porous manganese oxide layer. The cathode exhibits a high reversible capacity of 225 mAh g<sup>-1</sup> and long-term cyclability with 94% capacity retention over 2000 cycles. Remarkably, the pouch zinc-manganese dioxide battery delivers a total energy density of 75.2 Wh kg<sup>-1</sup>. As a result of the superior battery performance, the high safety of aqueous electrolyte, the facile cell assembly and the cost benefit of the source materials, this zinc-manganese dioxide system is believed to be promising for large-scale energy storage applications.The development of rechargeable aqueous zinc batteries are challenging but promising for energy storage applications. With a mild-acidic triflate electrolyte, here the authors show a high-performance Zn-MnO<sub>2</sub> battery in which the MnO<sub>2</sub> cathode undergoes Zn<sup>2+</sup> (de)intercalation.