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设计具有优化性能的二元 Ru-Sn 氧化物,用于可充电锌空气电池的空气电极。

Designing Binary Ru-Sn Oxides with Optimized Performances for the Air Electrode of Rechargeable Zinc-Air Batteries.

机构信息

Laboratory of Electrochemistry & Advanced Materials, Department of Chemical Engineering , National Tsing-Hua University , Hsin-Chu 30013 , Taiwan.

出版信息

ACS Appl Mater Interfaces. 2018 Mar 28;10(12):10064-10075. doi: 10.1021/acsami.7b18948. Epub 2018 Mar 19.

Abstract

Because of the sluggish kinetics of the oxygen evolution reaction (OER) and oxygen reduction reaction (ORR), binary ruthenium-tin oxides synthesized by a hydrothermal method with postannealing at 450 °C for 2 h are first proposed as bifunctional catalysts for these two reactions on the air electrode of rechargeable zinc-air batteries. The binary Ru-Sn oxides in various compositions show the typical oxide solid solution in the rutile phase. Among all binary Ru-Sn oxides, RuSn73 (70 atom % RuO and 30 atom % SnO) and RuSn37 (30 atom % RuO and 70 atom % SnO) show the highest catalytic activities toward the OER and ORR, respectively. Consequently, a novel design of the air electrode consisting of a RuSn37 coating on the carbon paper and a Ti mesh coated with RuSn73 (denoted RuSn(37-C|73-Ti)) is proposed to possess the optimal charge-discharge performances. A unique cell employing such an air electrode has been demonstrated to exhibit a very low charge-discharge cell voltage gap of 0.75 V at 10 mA cm. This cell with a peak power density of 120 mW cm at the current density of 235 mA cm also shows an outstanding charge-discharge stability over 80 h. This cell also exhibits an exceptionally high charge rate capability at 150 mA cm with a low charging voltage of 2.0 V.

摘要

由于氧析出反应 (OER) 和氧还原反应 (ORR) 的动力学缓慢,因此首次提出了通过水热法合成的并在 450°C 下后退火 2 小时的二元钌锡氧化物,作为可再充电锌空气电池空气电极上这两种反应的双功能催化剂。各种组成的二元 Ru-Sn 氧化物均表现出锐钛矿相典型的氧化物固溶体。在所有二元 Ru-Sn 氧化物中,RuSn73(70 原子% RuO 和 30 原子% SnO)和 RuSn37(30 原子% RuO 和 70 原子% SnO)分别对 OER 和 ORR 表现出最高的催化活性。因此,提出了一种由涂覆在碳纸上的 RuSn37 涂层和涂覆有 RuSn73 的 Ti 网(表示为 RuSn(37-C|73-Ti))组成的新型空气电极设计,以具有最佳的充放电性能。已经证明,采用这种空气电极的独特电池在 10 mA cm 时具有非常低的充放电电池电压差 0.75 V。该电池在 235 mA cm 的电流密度下具有 120 mW cm 的峰值功率密度,并且还表现出超过 80 小时的出色充放电稳定性。该电池在 150 mA cm 的高充电速率下也表现出异常高的电荷速率能力,充电电压低至 2.0 V。

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