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首页> 外文期刊>Applied Surface Science >Facile two-step synthesis of innovative anode design from tin-aminoclay (SnAC) and rGO for Li-ion batteries
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Facile two-step synthesis of innovative anode design from tin-aminoclay (SnAC) and rGO for Li-ion batteries

机译:锡 - 氨基粘土(SNAC)和锂离子电池rgo的创新阳极设计的两步合成

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摘要

A fin-aminoclay/reduced graphene oxide (SnO2-SnAC/rGO) electrode with significantly enhanced electrochemical performance was successfully fabricated by a facile two-step method entailing microwave treatment (1st step) and heat treatment (2nd step) synthesis processes. In step 1, the complete reduction of GO to rGO by microwave ensures the removal of most oxygen-containing functional groups on the material surface leading to improvement of its electrical conductivity along with the formation of SnO2 dots of 3-4 nm diameter. In step 2, the fin crystals are formed more stably in the SnAC/rGO framework by the heat-treatment process under Argon (Ar) gas via the direct conversion process of Sn2+ active sites within the SnAC structure. With this two-step process, the synthesized material possesses many unique synergistic effects, all leading to beneficial features (i.e., improved specific capacity, high rate capability, and long cycle life stability compared with SnO2-SnAC and pure rGO electrodes) for application to battery electrodes. Especially, SnO2-SnAC/rGO-500 degrees C (1:1) exhibits outstanding performance in terms of cyclic performance (650 mAh g(-1) after 100 cycles at 100 mA g(-1)) and rate capability.
机译:具有显着增强的电化学性能的翅片酰胺/缩小的石墨烯(SnO2-SNAC / RGO)电极通过诱导微波处理(第一步)和热处理(第2步)合成方法成功制造了显着增强的电化学性能。在步骤1中,微波完全减少到RGO,确保除去材料表面上的大多数含氧官能团,导致其导电性以及形成3-4nm直径的SnO2点的形成。在步骤2中,通过SNAC结构内的SN2 +活性位点的直接转化方法在氩气(AR)气体下的热处理过程中,在SNAC / RGO框架中更稳定地形成翅片晶体。通过这种两步的工艺,合成材料具有许多独特的协同效果,所有这些效果都导致有益特征(即,与SnO2-SNAC和纯RGO电极相比,改善了特定的特定容量,高速率能力和长循环寿命稳定性)以应用于电池电极。特别是,SnO2-SNAC / RGO-500摄氏度C(1:1)在100 mA G(-1)的100次循环后,在循环性能方面表现出出色的性能和速度,速率能力。

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