首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >Modification of the Cu current collector by magnetron sputtering to improve the cycle performance of MxOy (M:Ni,Mn,Co) anodes for lithium ion batteries
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Modification of the Cu current collector by magnetron sputtering to improve the cycle performance of MxOy (M:Ni,Mn,Co) anodes for lithium ion batteries

机译:通过磁控溅射改造Cu集电器,改善锂离子电池MXOY(M:Ni,Mn,Co)阳极的循环性能

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The present work reports a methodology to produce electrodes with superior performances for batteries. Herein, the fabrication of an anode material that is made of a ternary transition metal oxides (nickel manganese-cobalt containing oxide, NMCO) is achieved by hydrothermal method. Of the two kinds of electrodes prepared, the first is realized by direct lamination of a slurry that contains NMCO powders active materials onto the Cu foil. Then, to improve the mechanical, physical and electrochemical performance of the electrode, a novel design is proposed, where an additional Ni underlay thin film (10 nm thick) is magnetically sputtered onto the Cu foil, before the lamination of NMCO containing slurry (Ni/NMCO). The characterization results show that upon the existence of Ni underlay film both the adhesion as well as the stress accomodation ability of the electrode are improved. Moreover, the charge transfer resistance at the electrode/current collector interface is noted to be decreased due to the presence of the Ni underlay thin film. As a consequence, the galvanostatic tests show that Ni/NMCO anode exhibits an enhanced discharge capacity of 845 mAh g(-1) after 200 cycles under a load of 0.1 A g(-1), whilst the NMCO anode delivers a discharge capacity of 442 mAh g(-1). Moreover, when the Ni/NMCO anode is cycled at 1 A g(-1), it delivers a discharge capacity of 844 mAh g(-1) even after 100 cycles. Considering the position of the magnetron sputtering process in today's industrial applications and its effect on the electrode performance, the results of this study are expected to pave the way for designing electrodes of different battery applications, especially solid state batteries. (c) 2021 Elsevier B.V. All rights reserved.
机译:目前的工作报告了一种方法,以生产性能优越的电池电极。在此,通过水热方法实现由三元过渡金属氧化物(含镍锰钴氧化物,NMCO)制成的阳极材料的制造。在制备的两种电极中,第一种是通过将含有NMCO粉末活性材料的浆料直接层压到铜箔上实现的。然后,为了改善电极的机械、物理和电化学性能,提出了一种新的设计方案,在层压含NMCO的浆料(Ni/NMCO)之前,在铜箔上磁溅射一层额外的镍衬底薄膜(10 nm厚)。表征结果表明,镍衬底膜的存在提高了电极的附着力和应力适应能力。此外,由于镍衬底薄膜的存在,电极/集电器界面处的电荷转移电阻降低。因此,恒电流试验表明,在0.1 a g(-1)的负载下,在200次循环后,镍/纳米钴阳极的放电容量提高了845 mAh g(-1),而纳米钴阳极的放电容量为442 mAh g(-1)。此外,当Ni/NMCO阳极在1 A g(-1)下循环时,即使在100次循环后,其放电容量仍为844 mAh g(-1)。考虑到磁控溅射工艺在当今工业应用中的地位及其对电极性能的影响,本研究的结果有望为设计不同电池应用的电极铺平道路,尤其是固态电池。(c)2021爱思唯尔B.V.保留所有权利。

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