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首页> 外文期刊>Applied Physics Letters >Two-dimensional MoS_2 reinforced with Cu_3N nanoflakes prepared via binder less sputtering route for flexible supercapacitor electrodes
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Two-dimensional MoS_2 reinforced with Cu_3N nanoflakes prepared via binder less sputtering route for flexible supercapacitor electrodes

机译:用Cu_3N纳米薄饼加固二维MOS_2,通过粘合剂制备较低的溅射途径,用于柔性超级电容器电极

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摘要

Here,we present a binder less sputtering approach for controllable growth of copper nitride (Cu_3N) nanoflakes incorporated into 2D layered molybdenum disulfide (MoS_2) nanoworms directly grown on flexible stainless steel (SS) substrate. The formation of the intermixed nanostructure is revealed by surface morphology. Moreover,the porous structure and good conductivity,and the presence of sulfur and N_2 edges facilitate the synergistic effect favor more pathways for insertion and desertion of electrolyte ions (Na~+). The optimized composite electrode achieves an outstanding specific capacitance (215.47 F/g at 0.5 A/g) along with remarkable elongated cycle life (~90% retention over 2000 cycles at 9.5 A/g). Additionally,the electrode (of dimensions 3×1 cm~2) shows high energy density (~30 Wh/kg at a power density of 138W/kg),extended potential window (1V),fair mechanical stability,and pliability (retains ~91% specific capacitance at 175° bending angle). The contemporary method provides a cathode material for practically applicable supercapacitors with superior flexibility and desirable electrochemical properties.
机译:这里,我们提出了一种粘合剂较少的溅射方法,用于掺入掺入柔性不锈钢(SS)基板上直接生长的2D层状钼二硫化物(MOS_2)纳米漩涡中的氮化铜(Cu_3N)纳米辊的可控生长的溅射方法。通过表面形态揭示了骨膜纳米结构的形成。此外,多孔结构和良好的导电性,以及硫和N_2边缘的存在促进了协同效应有利于电解质离子的插入和遗留的更多途径(Na〜+)。优化的复合电极实现出色的特定电容(0.5 A / g的215.47f / g),以及显着的细长循环寿命(在9.5A / g时超过2000次循环〜90%的保留)。另外,电极(尺寸3×1cm〜2)显示了高能量密度(以138W / kg的功率密度为30WH / kg),延长潜在窗口(1V),公平的机械稳定性和柔韧性(保留〜在175°弯曲角度下的91%特定电容)。现代方法为实际适用的超级电容器提供了一种具有优异柔韧性和理想的电化学性能的阴极材料。

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  • 来源
    《Applied Physics Letters》 |2021年第20期|203901.1-203901.7|共7页
  • 作者单位

    Functional Nanomaterials Research Lab Department of Physics and Centre for Nanotechnology Indian Institute of Technology Roorkee Roorkee 247667 Uttarakhand India;

    Functional Nanomaterials Research Lab Department of Physics and Centre for Nanotechnology Indian Institute of Technology Roorkee Roorkee 247667 Uttarakhand India;

    Functional Nanomaterials Research Lab Department of Physics and Centre for Nanotechnology Indian Institute of Technology Roorkee Roorkee 247667 Uttarakhand India;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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