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High-Performance Lithium Storage Achieved by Chemically Binding Germanium Nanoparticles with N-Doped Carbon

机译:通过化学结合锗纳米粒子与N掺杂碳实现的高性能锂存储

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摘要

Germanium (Ge) is a promising anode material for lithium ion batteries due to its high theoretical capacity. However, its poor cycling stability associated with its large volume changes during discharging and charging processes are urgent problems to solve. This provides opportunities to engineer materials to overcome these issues. Here, we demonstrated a facile and scalable method to synthesize Ge nanoparticles/N-doped carbon monolith with a hierarchically porous structure. The combination of a solvothermal method and annealing treatment results in a well-connected three-dimensional N-doped carbon network structure consisting of Ge nanoparticles firmly coated by the conducting carbon. Such a hierarchical architecture features multiple advantages, including a continuous conductive carbon network, binding the Ge nanoparticles with carbon through a Ge—N chemical bond, and a porous structure for alleviating volume expansion of Ge particles. When serving as an anode for lithium ion batteries, the as-formed hybrid displays high capacities up to 1240.3 mAh g~(-1) at 0.1 A g~(-1) and 813.4 mAh g~(-1) at 0.5 A g~(-1) after 90 cycles, and at the same time, it also exhibits good cycling stability and excellent rate capability.
机译:锗(Ge)由于其高理论容量而成为锂离子电池的有希望的负极材料。然而,其循环稳定性差以及在放电和充电过程中的大体积变化是亟待解决的问题。这提供了工程材料以克服这些问题的机会。在这里,我们展示了一种简便且可扩展的方法来合成具有分级多孔结构的Ge纳米颗粒/ N掺杂碳单块。溶剂热法和退火处理的结合产生了良好连接的三维N掺杂碳网络结构,该结构由由导电碳牢固覆盖的Ge纳米颗粒组成。这种分级结构具有多个优点,包括连续的导电碳网络,通过Ge-N化学键将Ge纳米颗粒与碳结合以及用于减轻Ge颗粒体积膨胀的多孔结构。当用作锂离子电池的负极时,形成的混合动力电池在0.1 A g〜(-1)时显示高达1240.3 mAh g〜(-1)和在0.5 A g时显示813.4 mAh g〜(-1)的高容量〜(-1)经过90个循环后,同时还表现出良好的循环稳定性和出色的速率能力。

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