Experimental study demonstrates enhanced rate capability and cycling stability in aqueous manganese dioxide-chromium batteries, highlighting viable pathways for large-scale energy storage.
Aqueous manganese (Mn)-based batteries in cathode solid/liquid MnO 2 /Mn 2+ chemistry have attracted widespread attention thanks to their high theoretical capacity and long cycle stability. However, the sluggish kinetics of solid-state anode reactions is accountable for the limited Mn-based battery performance at high rates. In this study, we report aqueous MnO 2 –Cr (Bi) batteries with excellent electrochemical performance that are achieved via the electrolyte regulation of Bi 3+ for both the MnO 2 cathode and liquid-state Cr anode reactions. Compared with the pristine MnO 2 –Cr cell, the electrochemical performance of the MnO 2 –Cr (Bi) cell regulated by the Bi 3+ in the electrolyte is significantly improved. Specifically, our MnO 2 –Cr (Bi) full cell exhibits a low overpotential of 89 mV, a discharge voltage of 1.55 V, and high energy efficiency of 91.4% at relatively low rates. Moreover, a stable lifetime of 12 000 cycles at a rate of 200 C and an ultrahigh rate of 400 C with a discharge plateau above 1 V is achieved. The exciting results demonstrate that the aqueous MnO 2 –Cr (Bi) cells are of great interest for the deployment of economical and practical batteries for large-scale energy storage applications.
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Wang et al. (2021) studied this question.
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