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基于多金属氧酸盐@金属有机框架衍生的双金属Co/Mo C纳米颗粒嵌入碳纳米管交织的分级多孔碳多面体复合材料作为铝硫电池的高效电催化剂

Polyoxometalates@Metal-Organic Frameworks Derived Bimetallic Co/Mo C Nanoparticles Embedded in Carbon Nanotube-Interwoven Hierarchically Porous Carbon Polyhedron Composite as a High-Efficiency Electrocatalyst for Al-S Batteries.

作者信息

Zhou Qiuping, Zhang Xuecheng, Wu Yuchao, Jiang Xinyuan, Li Tangsuo, Chen Ming, Ni Lubin, Diao Guowang

机构信息

School of Chemistry & Chemical Engineering, Yangzhou University, Yangzhou, 225002, P. R. China.

出版信息

Small. 2023 Nov;19(48):e2304515. doi: 10.1002/smll.202304515. Epub 2023 Aug 4.

Abstract

Al-S battery (ASB) is a promising energy storage device, notable for its safety, crustal abundance, and high theoretical energy density. However, its development faces challenges due to slow reaction kinetics and poor reversibility. The creation of a multifunctional cathode material that can both adsorb polysulfides and accelerate their conversion is key to advancing ASB. Herein, a composite composed of polyoxometalate nanohybridization-derived Mo C and N-doped carbon nanotube-interwoven polyhedrons (Co/Mo C@NCNHP) is proposed for the first time as an electrochemical catalyst in the sulfur cathode. This composite improves the utilization and conductivity of sulfur within the cathode. DFT calculations and experimental results indicate that Co enables the chemisorption of polysulfides while Mo C catalyzes the reduction reaction of long-chain polysulfides. X-ray photoelectron spectroscopy (XPS) and in situ UV analysis reveal the different intermediates of Al polysulfide species in Co/Mo C@NCNHP during discharging/charging. As a cathode material for ASB, Co/Mo C@NCNHP@S composite can deliver a discharge-charge voltage hysteresis of 0.75 V with a specific capacity of 370 mAh g after 200 cycles at 1A g .

摘要

铝硫电池(ASB)是一种很有前景的储能装置,以其安全性、地壳丰度高和理论能量密度高而著称。然而,由于反应动力学缓慢和可逆性差,其发展面临挑战。开发一种既能吸附多硫化物又能加速其转化的多功能阴极材料是推进铝硫电池发展的关键。在此,首次提出一种由多金属氧酸盐纳米杂化衍生的碳化钼和氮掺杂碳纳米管交织多面体组成的复合材料(Co/Mo C@NCNHP)作为硫阴极中的电化学催化剂。这种复合材料提高了阴极内硫的利用率和导电性。密度泛函理论(DFT)计算和实验结果表明,钴能实现多硫化物的化学吸附,而碳化钼催化长链多硫化物的还原反应。X射线光电子能谱(XPS)和原位紫外分析揭示了Co/Mo C@NCNHP在充放电过程中铝多硫化物物种的不同中间体。作为铝硫电池的阴极材料,Co/Mo C@NCNHP@S复合材料在1A g 下循环200次后,充放电电压滞后为0.75 V,比容量为370 mAh g 。

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