MoTe2 on Metal-Organic Framework Derived MoO2/N-Doped Carbon Rods for Enhanced Sodium-Ion Storage Properties

Yi-Jie Zhang, Yingying Gao, Xiaoge Wang, Q. Ye, Ya Zhang, Yuehua Wu, Shu-Han Chen, B. Ruan, D. Shi, T. Jiang, Fangchang Tsai, N. Ma
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引用次数: 5

Abstract

Sodium-ion batteries (SIBs) are highly potential for next-generation electrochemical energy storage because of their abundant resources and low prices. Transition metal dichalcogenides (TMDCs) have an excellent capacity, high electrical conductivity, and diverse structures. However, its volume expansion and tendency to restack during charge/discharge cycles lead to inferior electrochemical properties, limiting its development in the battery field. Herein, we synthesized MoO2/NC rods covered with MoTe2 nanosheets on the surface (MoTe2@MoO2/NC) by a high-temperature solid-phase synthesis method based on Mo-MOF a sacrificial template for sodium-ion batteries. The MoO2 core enhances the electron transfer efficiency as a conductive backbone and prevents the volume expansion of MoTe2 nanosheets. Meanwhile, the MoTe2 nanosheets are tightly wrapped around the MoO2 core, significantly reducing the ion diffusion path. Furthermore, the C and N doped substrates with conductivity ensure the integrity of the structure and enhance the conductivity of the electrodes. Benefiting from these advantages, MoTe2@MoO2/NC delivered a high electrochemical performance with high capacity (~463.9 mAh g-1), superior fast-charge discharge ability (~294.7, and 258.3 mAh g-1 at 5, and 10 A g-1, respectively). Even at a high current density of 1 A g-1, the specific capacity was maintained at about 328.3 mAh g-1 after 100 cycles.
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金属有机骨架衍生MoO2/ n掺杂碳棒上的MoTe2增强钠离子存储性能
钠离子电池以其丰富的资源和低廉的价格在新一代电化学储能领域具有很大的应用潜力。过渡金属二硫族化合物(TMDCs)具有优良的容量、高导电性和多种结构。但由于其体积膨胀和在充放电循环过程中的再堆叠倾向,导致其电化学性能较差,限制了其在电池领域的发展。本文采用基于钠离子电池牺牲模板Mo-MOF的高温固相合成方法合成了表面覆盖MoTe2纳米片的MoO2/NC棒(MoTe2@MoO2/NC)。MoO2核心作为导电骨架提高了电子传递效率,防止了MoTe2纳米片的体积膨胀。同时,MoTe2纳米片紧密包裹在MoO2核心周围,大大减少了离子的扩散路径。此外,具有导电性的C和N掺杂衬底确保了结构的完整性并提高了电极的导电性。得益于这些优势,MoTe2@MoO2/NC提供了高电化学性能,具有高容量(~463.9 mAh g-1),卓越的快速充电放电能力(分别在5和10 a g-1下~294.7和258.3 mAh g-1)。即使在1 a g-1的高电流密度下,经过100次循环后,比容量仍保持在约328.3 mAh g-1。
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