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首页> 外文期刊>Nanoscale >Tannic acid-polypyrrole multifunctional coating layer enhancing the interface effect and efficient Li-ion transport of a phosphorus anode
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Tannic acid-polypyrrole multifunctional coating layer enhancing the interface effect and efficient Li-ion transport of a phosphorus anode

机译:单宁acid-polypyrrole多功能涂层层效果和提高界面有效磷阳极锂离子传输

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摘要

Phosphorus has been considered a promising anode material for lithium-ion batteries because of its high specific capacity of 2596 mA h g−1 and safe lithiation voltage of 0.7 V. However, the practical application of the phosphorus anode is challenged by its poor cyclability associated with the dissolution of phosphorus intermediates, the enormous volume expansion and the sluggish lithiation reaction kinetics during the cycling process. Herein, a multifunctional coating layer is designed and fabricated on the surface of a phosphorus–carbon nanotube (P-CNT) electrode via the facile in situ polymerization of plant-derived tannic acid (TA) and pyrrole (Py). This coating layer shows strong adsorption of phosphorus and its derivatives, buffers the volumetric expansion of phosphorus and facilitates efficient Li-ion transport, thus enhancing phosphorus utilization during the cycling process. As a result, the P-CNT@TA-PPy hybrid exhibits a stable coulombic efficiency of 99.0% at 520 mA g−1 after 100 cycles and a reduced volumetric expansion of 50% at 260 mA g−1, superior to P-CNT with its unstable coulombic efficiency and large electrode expansion of 329%. This study sheds light on the rational design of advanced phosphorus-based anodes for alkali metal-ion batteries.
机译:磷被认为是一个有前途的阳极锂离子电池由于其材料马高特定容量的2596 h g−1和安全lithiation电压为0.7 V。实际应用的磷阳极其贫困cyclability相关的挑战的溶解磷中间体,巨大的体积膨胀和缓慢在自行车lithiation反应动力学的过程。设计和制作表面上的吗phosphorus-carbon纳米管(P-CNT)电极通过那个老掉牙的原位聚合植物的丹宁酸(TA)和吡咯(Py)。这个涂料层显示了强烈的吸附磷及其衍生物,缓冲区磷和体积膨胀促进高效的锂离子传输,因此在提高磷的利用率循环过程。混合展品库仑效率稳定马99.0%至520 g−1和100年后周期减少了50%的体积膨胀260 mAg−1,优于P-CNT不稳定库仑效率和大的电极扩张329%。设计合理先进的基于磷碱性金属离子电池阳极。

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