纳米乳液定向分级组装ZnS@C具有穿透孔的钠储存纳米球

Xiaowei He, Sifei Zhuo, Lidong Tian, Mingtao Qiao, Xingfeng Lei, Hepeng Zhang, Qiuyu Zhang
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引用次数: 6

摘要

为了跟踪锂离子电池(LIBs)的性能,过渡金属硫化物(TMSs)已被开发为钠离子电池(SIBs)的有前途的碳替代品。尽管有吸引力,但要以高循环性能实现其容量利用率仍然是一个巨大的挑战。在此,已经开发了一种纳米乳液导向的方法来控制ZnS@C从中心到表面具有穿透性大孔和内部中孔的单元分布在块状物之间。关于离子扩散,穿透性大孔可以作为内置的离子缓冲库,以保持电解质的稳定流动,而内部中孔有助于离子在整个体积上扩散。就稳定性而言,自由基多孔结构可以作为自支撑的垂直骨骼工作,以适应横向和垂直侧的体积变化。此外,分布在ZnS纳米颗粒之间的局部碳不仅作为结合剂连接众多的ZnS纳米粒子,而且赋予自由基骨有效的电子传输能力。作为概念的证明,这种绣球花ZnS@C纳米球具有高速率和长循环能力的钠储存性能。这种纳米乳液导向的方法预计可用于其他具有穿透孔的TMS,用于后锂离子电池应用。
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Nanoemulsion-directed assembly of hierarchical ZnS@C nanospheres with penetrating pores for sodium storage

To follow up on the performance of lithium-ion batteries (LIBs), transition metal sulfides (TMSs) have been developed as promising carbon alternatives for sodium-ion batteries (SIBs). Although attractive, it is still a great challenge to fulfill their capacity utilization with high cycling performance. Herein, a nanoemulsion-directed method has been developed to control the spherical arrangement of ZnS@C units with both penetrating macropores from the center to the surface and inner mesopores distributed among the bulks. With respect to ion diffusion, the penetrating macropores could serve as the built-in ion-buffer reservoirs to keep a steady flow of electrolyte, while the inner mesopores facilitate the ion diffusion across the whole bulks. In terms of stability, the radical porous structure could work as self-supported vertical bones to accommodate the volume change from both lateral and vertical sides. Besides, the localized carbon distributed among the ZnS nanoparticles not only acts as binding agents to join the numerous ZnS nanoparticles but also endows the radical bones with effective electron transmission capability. As a proof of concept, such hydrangea-like ZnS@C nanospheres deliver sodium storage performance with high-rate and long-cycling capability. This nanoemulsion-directed approach is anticipated for other TMSs with penetrating pores for post-lithium-ion batteries applications.

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Issue Information Cover Image, Volume 3, Issue 6, November 2024 Lithium Ion Batteries: Characteristics, Recycling and Deep-Sea Mining ZnxMnO2/PPy Nanowires Composite as Cathode Material for Aqueous Zinc-Ion Hybrid Supercapacitors Manipulation in the In Situ Growth Design Parameters of Aqueous Zinc-Based Electrodes for Batteries: The Fundamentals and Perspectives
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