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首页> 外文期刊>The journal of physics and chemistry of solids >Controllable SnO2/ZnO@PPy hollow nanotubes prepared by electrospinning technology used as anode for lithium ion battery
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Controllable SnO2/ZnO@PPy hollow nanotubes prepared by electrospinning technology used as anode for lithium ion battery

机译:通过静电纺丝技术用作锂离子电池的阳极制备的可控SnO2 / ZnO @ PPY中空纳米管

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摘要

The one-dimensional hollow nanostructure can effectively decrease the diffusion distance of lithium ions and alleviate the volume change of SnO2 during cycling. In this work, SnO2/ZnO hollow nanotubes were obtained from two different molecular weights of Polyvinylpyrrolidone (PVP) by combining electrospinning technology and heat treatment. Mechanism studies indicated the hollow nanotubes with different morphology could be controllable by varying the molecular weight of PVP. SnO2/ZnO nanotubes with high molecular weight PVP as precursor (SnO2/ZnO-H) had smaller diameter and denser structure, which as anode showed better stability and capacity in electrochemical test. The conductivity and stability of SnO2/ZnO-H were further improved after coated with Polypyrrole (PPy) by the in-situ polymerization. The reversible capacity of the batteries was improved, and the volume expansion of the metal oxide was restrained during charging and discharging. The SnO2/ZnO@PPy anode exhibited a high discharge capacity of 626.1 mA h g(-1) of 0.2C after 100 cycles, showing an outstanding stability. Therefore, controllable hollow metal oxide nanotubes structures could be obtained via different the molecular weights of precursor polymer. And the hollow nanotubes after coating by PPy as anode materials exhibited the excellent electrochemical performance. This research provided an idea in further design and optimization of anode microstructure for lithium-ion batteries.
机译:一维空心纳米结构可以有效地缩短锂离子的扩散距离,缓解循环过程中SnO2的体积变化。本研究采用静电纺丝技术和热处理相结合的方法,从两种不同分子量的聚乙烯吡咯烷酮(PVP)中制备了SnO2/ZnO空心纳米管。机理研究表明,通过改变PVP的分子量,可以控制不同形貌的空心纳米管。以高分子量PVP为前驱体(SnO2/ZnO-H)的SnO2/ZnO纳米管直径较小,结构更致密,作为阳极具有更好的稳定性和电化学性能。用聚吡咯(PPy)进行原位聚合,进一步提高了SnO2/ZnO-H的导电性和稳定性。提高了电池的可逆容量,抑制了充放电过程中金属氧化物的体积膨胀。SnO2/ZnO@PPy100次循环后,阳极的高放电容量为626.1 mA h g(-1),为0.2C,显示出出色的稳定性。因此,通过改变前驱体聚合物的分子量,可以获得可控的空心金属氧化物纳米管结构。用聚吡咯作为阳极材料包覆后的空心纳米管表现出了优异的电化学性能。本研究为锂离子电池阳极微观结构的进一步设计和优化提供了思路。

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