首页> 外文期刊>Chemistry of Materials: A Publication of the American Chemistry Society >Performance Enhancement and Mechanistic Studies of Room-Temperature Sodium-Sulfur Batteries with a Carbon-Coated Functional Nafion Separator and a Na2S/Activated Carbon Nanofiber Cathode
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Performance Enhancement and Mechanistic Studies of Room-Temperature Sodium-Sulfur Batteries with a Carbon-Coated Functional Nafion Separator and a Na2S/Activated Carbon Nanofiber Cathode

机译:带有碳涂层功能性Nafion隔板和Na2S /活性炭纳米纤维阴极的室温钠硫电池的性能增强和机理研究

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Operation of sodium-sulfur batteries at room temperature has been proposed and studied for about a decade, but polysulfide-shuttle through the traditional battery separator and low-utilization of the sulfur cathode commonly have been the major challenges. Also, because of the highly active nature of the sodium metal, the conventional room temperature sodium-sulfur (RT Na-S) battery concept with the sodium-metal anode and elemental sulfur cathode imposes serious safety concerns. To overcome the above difficulties, we present here a RT Na-S system with an advanced membrane-electrode-assembly (MEA) comprising a carbon-coated, presodiated Nafion membrane (Na-Nafion) and a sodium sulfide (Na2S) cathode. The Na-Nafion membrane provides a facile Na+-ion conductive path and serves as a cation-selective shield to prevent the migration of the polysulfides to the anode. The carbon coating on the Na-Nafion plays an upper-current-collector role and thereby improves the electrochemical utilization of the active Na2S. Employing Na2S as the cathode provides a pathway to develop the RT Na-S batteries with sodium metal-free anodes. The RT Na-S battery with the above MEA exhibits remarkably enhanced capacity and cyclability in contrast to the Na-S batteries with the conventional electrolyte-separator configuration. Mechanistic studies reveal that the suppression of polysulfide migration through the Na-Nafion is due to size and electronic effects.
机译:已经提出并研究了钠-硫电池在室温下的运行大约十年,但是通过传统电池隔板的多硫化物穿梭和硫阴极的低利用率通常是主要的挑战。而且,由于钠金属的高活性性质,具有钠金属阳极和元素硫阴极的常规室温钠硫(RT Na-S)电池概念带来了严重的安全隐患。为了克服上述困难,我们在这里介绍了一种RT Na-S系统,该系统具有先进的膜电极组件(MEA),该膜电极组件包括碳涂层的预沉积的Nafion膜(Na-Nafion)和硫化钠(Na2S)阴极。 Na-Nafion膜提供了便捷的Na +离子导电路径,并用作阳离子选择性屏蔽层,以防止多硫化物迁移到阳极。 Na-Nafion上的碳涂层起着较高电流收集器的作用,从而提高了活性Na2S的电化学利用率。以Na2S为阴极提供了开发无钠金属阳极的RT Na-S电池的途径。与具有常规电解质分离器构造的Na-S电池相比,具有上述MEA的RT Na-S电池表现出显着增强的容量和可循环性。机理研究表明,通过Na-Nafion抑制多硫化物迁移是由于尺寸和电子效应。

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