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用于室温钠-硫电池中防止多硫化物迁移和加速氧化还原动力学的极性电催化剂。

Polar Electrocatalysts for Preventing Polysulfide Migration and Accelerating Redox Kinetics in Room-Temperature Sodium-Sulfur Batteries.

机构信息

Henan Provincial Key Laboratory of Surface and Interface Science, Department of Materials and Chemical Engineering, Zhengzhou University of Light Industry, Zhengzhou, 450001, China.

School of Materials and Energy, Guangdong University of Technology, Guangzhou, 510006, China.

出版信息

Small Methods. 2023 Jun;7(6):e2201728. doi: 10.1002/smtd.202201728. Epub 2023 Mar 30.

Abstract

Due to the high theoretical energy density, low cost, and rich abundance of sodium and sulfur, room-temperature sodium-sulfur (RT Na-S) batteries are investigated as the promising energy storage system. However, the inherent insulation of the S , the dissolution and shuttle of the intermediate sodium polysulfides (NaPSs), and especially the sluggish conversion kinetics, restrict the commercial application of the RT Na-S batteries. To address these issues, various catalysts are developed to immobilize the soluble NaPSs and accelerate the conversion kinetics. Among them, the polar catalysts display impressive performance. Polar catalysts not only can significantly accelerate (or alter) the redox process, but also can adsorb polar NaPSs through polar-polar interaction because of their intrinsic polarity, thus inhibiting the notorious shuttle effect. Herein, the recent advances in the electrocatalytic effect of polar catalysts on the manipulation of S speciation pathways in RT Na-S batteries are reviewed. Furthermore, challenges and research directions to realize rapid and reversible sulfur conversion are put forward to promote the practical application of RT Na-S batteries.

摘要

由于钠和硫具有理论能量密度高、成本低、丰度丰富等特点,室温钠-硫(RT Na-S)电池被认为是很有前途的储能系统。然而,S 的固有绝缘性、中间多硫化物钠(NaPSs)的溶解和穿梭以及特别是缓慢的转化动力学限制了 RT Na-S 电池的商业应用。为了解决这些问题,开发了各种催化剂来固定可溶性 NaPSs 并加速转化动力学。其中,极性催化剂表现出了令人印象深刻的性能。极性催化剂不仅可以显著加速(或改变)氧化还原过程,而且由于其固有极性,还可以通过极性-极性相互作用吸附极性 NaPSs,从而抑制臭名昭著的穿梭效应。本文综述了极性催化剂对 RT Na-S 电池中 S 形态途径的电催化作用的最新进展。此外,还提出了实现快速可逆硫转化的挑战和研究方向,以推动 RT Na-S 电池的实际应用。

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