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氮掺杂碳纳米球负载 Fe 助力 Na-S 电池的电催化辅助性能提升。

Electrocatalytic Assisted Performance Enhancement for the Na-S Battery in Nitrogen-Doped Carbon Nanospheres Loaded with Fe.

机构信息

College of Chemistry and Environmental Engineering, Shenzhen University, Shenzhen 518060, China.

College of Materials Science and Engineering, Xi'an University of Architecture and Technology, Xi'an 710055, China.

出版信息

Molecules. 2020 Mar 30;25(7):1585. doi: 10.3390/molecules25071585.

Abstract

Room temperature sodium-sulfur batteries have been considered to be potential candidates for future energy storage devices because of their low cost, abundance, and high performance. The sluggish sulfur reaction and the "shuttle effect" are among the main problems that hinder the commercial utilization of room temperature sodium-sulfur batteries. In this study, the performance of a hybrid that was based on nitrogen (N)-doped carbon nanospheres loaded with a meagre amount of Fe ions (0.14 at.%) was investigated in the sodium-sulfur battery. The Fe ions accelerated the conversion of polysulfides and provided a stronger interaction with soluble polysulfides. The Fe-carbon nanospheres hybrid delivered a reversible capacity of 359 mAh·g at a current density of 0.1 A·g and retained a capacity of 180 mAh·g at 1 A·g, after 200 cycles. These results, combined with the excellent rate performance, suggest that Fe ions, even at low loading, are able to improve the electrocatalytic effect of carbon nanostructures significantly. In addition to Na-S batteries, the new hybrid is anticipated to be a strong candidate for other energy storage and conversion applications such as other metal-sulfur batteries and metal-air batteries.

摘要

室温钠离子电池因其成本低、储量丰富、性能高而被认为是未来储能设备的潜在候选者。硫反应缓慢和“穿梭效应”是阻碍室温钠离子电池商业化的主要问题之一。在这项研究中,研究了负载少量 Fe 离子(0.14 原子%)的氮(N)掺杂碳纳米球的混合体在钠离子电池中的性能。Fe 离子加速了多硫化物的转化,并与可溶性多硫化物提供了更强的相互作用。Fe-碳纳米球混合体在 0.1 A·g 的电流密度下具有 359 mAh·g 的可逆容量,在 1 A·g 下循环 200 次后,容量保持在 180 mAh·g。这些结果与优异的倍率性能相结合表明,即使在低负载下,Fe 离子也能够显著提高碳纳米结构的电催化效果。除了 Na-S 电池外,这种新型混合体有望成为其他储能和转换应用(如其他金属-硫电池和金属-空气电池)的有力候选者。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/aa61/7180711/9f665303691f/molecules-25-01585-g001.jpg

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