歧化
锰
流动电池
氧化还原
电解质
无机化学
钒
化学
离子
金属
电池(电)
电极
材料科学
冶金
物理化学
物理
催化作用
功率(物理)
生物化学
有机化学
量子力学
作者
Danick Reynard,Sunny Maye,Pekka Peljo,Vimanshu Chanda,Hubert H. Girault,Solène Gentil
标识
DOI:10.1002/chem.202000340
摘要
Abstract The Mn III /Mn II redox couple with a standard potential of +1.51 V versus the standard hydrogen electrode (SHE) has attracted interest for the design of V/Mn redox flow batteries (RFBs). However, Mn III disproportionation leads to a loss of capacity, an increase in pressure drop, and electrode passivation caused by the formation of MnO 2 particles during battery cycling. In this work, the influence of Ti IV or/and V V on Mn III stability in acidic conditions is studied by formulating four different electrolytes in equimolar ratios (Mn, Mn/Ti, Mn/V, Mn/V/Ti). Voltammetry studies have revealed an EC i process for Mn II oxidation responsible for the electrode passivation. SEM and XPS analysis demonstrate that the nature and morphology of the passivating oxides layer depend strongly on the electrolyte composition. Spectroelectrochemistry highlights the stabilization effect of Ti IV and V V on Mn III . At a comparable pH, the amount of Mn III loss through disproportionation is decreased by a factor of 2.5 in the presence of Ti IV or/and V V . Therefore, V V is an efficient substitute for Ti IV to stabilize the Mn III electrolyte for RFB applications.
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