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Zinc deposition and dissolution in sulfuric acid onto a graphite- resin composite electrode as the negative electrode reactions in acidic zinc-based redox flow batteries

机译:锌在酸性锌基氧化还原液流电池中作为负极反应,在硫酸中沉积并溶解在石墨树脂复合电极上

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Electrodeposition and dissolution of zinc in sulfuric acid were studied as the negative electrode reactions in acidic zinc-based redox flow batteries. The zinc deposition and dissolution is a quasi-reversible reaction with a zinc ion diffusion coefficient of 4.6 9 10~(-6) cm~2 s~(-1) obtained. The increase of acid concentration facilitates an improvement in the kinetics of zinc electrodeposition- dissolution process. But too high acid concentration would result in a significant decrease in charge efficiency. The performance of the zinc electrode in a three-electrode system with magnetic stirring was also studied as a function of Zn(II) ion concentration, sulfuric acid concentration, current density, and the addition of additives in 1 M H_2SO_4 medium. The optimum electrolyte composition is suggested at high zinc(II) concentration (1.25 M) and moderate sulfuric acid concentration (1.0-1.5 M) at a current density range of 20-30 mA cm~(-2). Whether in acidfree solution or in sulfuric acid solution with or without additives, no dendrite formation is observed after zinc electrodeposition for 1 h at 20 mA cm~(-2). The energy efficiency is improved from 77 % in the absence of additives in 1 M H_2SO_4 medium to over 80 % upon the addition of indium oxide or SLS-Sb(III) combined additive as hydrogen suppressants.
机译:作为酸性锌基氧化还原液流电池的负极反应,研究了锌在硫酸中的电沉积和溶解。锌的沉积和溶解是准可逆反应,得到的锌离子扩散系数为4.6 9 10〜(-6)cm〜2 s〜(-1)。酸浓度的增加有助于改善锌电沉积-溶解过程的动力学。但是酸浓度太高会导致充电效率显着降低。还研究了锌电极在三电极系统中磁力搅拌下的性能,该性能与Zn(II)离子浓度,硫酸浓度,电流密度以及在1 M H_2SO_4介质中添加添加剂的关系。建议在电流密度范围为20-30 mA cm〜(-2)的高锌(II)浓度(1.25 M)和中等硫酸浓度(1.0-1.5 M)的情况下获得最佳电解质组成。无论在无酸溶液中还是在有或没有添加剂的硫酸溶液中,在20 mA cm〜(-2)的条件下锌电沉积1 h后都未观察到枝晶的形成。当添加氧化铟或SLS-Sb(III)组合添加剂作为氢抑制剂时,能量效率从1 M H_2SO_4介质中不存在添加剂的77%提高到80%以上。

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