水溶液
插层(化学)
锰
电化学
化学
阴极
电解质
氧化还原
离子键合
电池(电)
无机化学
离子
质子
材料科学
电极
物理化学
有机化学
热力学
物理
功率(物理)
量子力学
作者
Songshan Bi,Yan Zhang,Shenzhen Deng,Zhiwei Tie,Zhiqiang Niu
标识
DOI:10.1002/anie.202200809
摘要
Aqueous manganese-ion batteries (MIBs) are promising energy storage systems because of the distinctive merits of Mn metal, in terms of high abundance, low cost, nontoxicity, high theoretical capacity and low redox potential. Conventional MIBs are based on the Mn2+ ion storage mechanism, whereas the capacity in cathode materials is generally limited due to the high charge density and large solvated ionic radius of Mn2+ ions in aqueous electrolytes. Herein, proton intercalation chemistry is introduced in aqueous MIBs, in which the layered Al0.1 V2 O5 ⋅1.5 H2 O (AlVO) cathode exhibits a consequent Mn2+ and H+ ion intercalation/extraction process. Such an energy storage mechanism contributes to enhanced electrochemical performance, including high capacity, fast reaction kinetics and stable cycling behavior. Benefiting from this proton intercalation chemistry, the aqueous Mn||AlVO cells could deliver high specific energy and power simultaneously. This work provides a route for the design of high-performance aqueous MIBs.
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