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Improvement of zinc-cerium redox flow batteries using mixed methanesulfonate-chloride negative electrolyte

机译:甲烷磺酸盐-氯化物混合负极电解液对锌铈还原液流电池的改进

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The performance of a zinc-cerium redox flow battery (RFB) with mixed methanesulfonate (MSA) - chloride negative electrolyte is compared to that of a zinc-cerium RFB with pure MSA electrolyte. Half-cell studies on a polyvinyl-ester carbon electrode confirm that the addition of Cl- ions increases the amount of zinc deposited during cathodic polarization and the exchange current density of the zinc redox reaction. Hence, an electrolyte with a composition of 0.9 mol dm(-3) ZnMSA and 0.6 mol dm(-3) ZnCl2 in 1 mol dm(-3) MSA is chosen as the negative electrolyte for use in a bench-scale zinc-cerium RFB. Reference electrodes are also incorporated in the RFB set-up so that the potential of each electrode can be monitored during operation. The results of the full-cell experiments show that the battery voltage efficiency increases with mixed MSA-chloride electrolyte due to the lower overpotential of the zinc half-cell reaction. Moreover, under the conditions where the zinc redox reaction is the main limiting factor, the charge efficiency rises significantly when the mixed solution is employed. Additionally, a life-cycle analysis of the battery based on a 15-min charge period and current density of 25 mA cm(-2) shows that the total operating time and number of cycles increases from 42 h and 97 cycles, respectively, in the case where the conventional negative electrolyte is used to more than 75 h and 166 cycles when Cl- is added. Based on these results, a zinc-cerium RFB with mixed MSA-chloride negative electrolyte has a notably longer life and higher energy efficiency compared to conventional zinc-cerium RFBs.
机译:将具有混合甲磺酸盐(MSA)-氯化物负极电解液的锌铈还原流电池(RFB)的性能与具有纯MSA电解液的锌铈RFB的性能进行了比较。在聚乙烯基酯碳电极上进行的半电池研究证实,添加Cl-离子可增加阴极极化过程中沉积的锌量以及锌氧化还原反应的交换电流密度。因此,选择在1 mol dm(-3)MSA中组成为0.9 mol dm(-3)ZnMSA和0.6 mol dm(-3)ZnCl2的电解质作为用于台式锌铈合金的负电解质RFB。参比电极也包含在RFB装置中,因此可以在操作过程中监视每个电极的电位。全电池实验的结果表明,由于锌半电池反应的过低电势,混合MSA-氯化物电解质会提高电池电压效率。此外,在以锌氧化还原反应为主要限制因素的条件下,当使用混合溶液时,充电效率显着提高。此外,根据15分钟的充电时间和25 mA cm(-2)的电流密度对电池进行的生命周期分析表明,在电池中,总的工作时间和循环次数分别从42 h和97循环增加。当添加Cl-时,常规负极电解液的使用时间超过75小时和166个循环。基于这些结果,与传统的锌铈RFB相比,带有混合MSA-氯化物负极电解液的锌铈RFB具有明显更长的寿命和更高的能源效率。

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