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General synthesis of transition metal oxide ultrafine nanoparticles embedded in hierarchically porous carbon nanofibers as advanced electrodes for lithium storage

机译:嵌入多孔碳纳米纤维中作为过渡金属锂存储高级电极的过渡金属氧化物超细纳米粒子的一般合成

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摘要

A unique general, large-scale, simple, and cost-effective strategy, i.e., foaming-assisted electrospinning, for fabricating various transition metal oxides into ultrafine nanoparticles (TMOs UNPs) that are uniformly embedded in hierarchically porous carbon nanofibers (HPCNFs) has been developed. Taking advantage of the strong repulsive forces of metal azides as the pore generator during carbonization, the formation of uniform TMOs UNPs with homogeneous distribution and HPCNFs is simultaneously implemented. The combination of uniform ultrasmall TMOs UNPs with homogeneous distribution and hierarchically porous carbon nanofibers with interconnected nanostructure can effectively avoid the aggregation, dissolution, and pulverization of TMOs, promote the rapid 3D transport of both Li ions and electrons throughout the whole electrode, and enhance the electrical conductivity and structural integrity of the electrode. As a result, when evaluated as binder-free anode materials in Li-ion batteries, they displayed extraordinary electrochemical properties with outstanding reversible capacity, excellent capacity retention, high Coulombic efficiency, good rate capability, and superior cycling performance at high rates. More importantly, the present work opens up a wide horizon for the fabrication of a wide range of ultrasmall metal/metal oxides distributed in 1D porous carbon structures, leading to advanced performance and enabling their great potential for promising large-scale applications.
机译:已经有一种独特的通用,大规模,简单且具有成本效益的策略,即发泡辅助电纺丝,用于将各种过渡金属氧化物制成均匀地嵌入分层多孔碳纳米纤维(HPCNFs)中的超细纳米颗粒(TMOs UNP)。发达。利用碳化过程中金属叠氮化物的强排斥力作为造孔剂,同时形成均一的,分布均匀的TMOs UNPs和HPCNFs。均匀分布的均匀超小型TMO UNP和具有相互连接的纳米结构的分层多孔碳纳米纤维可以有效避免TMO的聚集,溶解和粉碎,促进锂离子和电子在整个电极中的快速3D传输,并增强电极的电导率和结构完整性。结果,当被评估为锂离子电池中的无粘结剂阳极材料时,它们表现出非凡的电化学性能,具有出色的可逆容量,出色的容量保持能力,高库仑效率,良好的倍率性能以及高倍率下的优异循环性能。更重要的是,本工作为制造分布在一维多孔碳结构中的各种超小型金属/金属氧化物开辟了广阔的前景,从而带来了先进的性能,并使其有潜力在有希望的大规模应用中使用。

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