首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Ni nanoparticle doped porous VN nanoflakes assembled into hierarchical hollow microspheres with a structural inheritance from the Ni1-xVxO2 cathode material for high performance asymmetric supercapacitors
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Ni nanoparticle doped porous VN nanoflakes assembled into hierarchical hollow microspheres with a structural inheritance from the Ni1-xVxO2 cathode material for high performance asymmetric supercapacitors

机译:Ni纳米颗粒掺杂的多孔VN纳米薄片组装成分层的空心微球,其结构继承自Ni1-xVxO2阴极材料,用于高性能不对称超级电容器

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摘要

The binary transition metal oxide of a Ni1-xVxO2 cathode material with a 3D hierarchical hollow microsphere (HHMS) structure was designed in this study. The combination of two metal species and a 3D HHMS structure, providing sufficient active sites for electrochemical reactions and efficient ion transportation, endows this material with excellent electrochemical properties such as a high specific capacitance of 677.8 F g(-1) and an enhanced rate capability. The as-obtained Ni1-xVxO2 HHMS was also used as an original material to fabricate a Ni nanoparticle (NP) doped VN 3D HHMS hybrid anode material via an effective nitridation treatment. In this composite, the Ni NPs are well dispersed in the VN skeleton, which enables good electrical contact and transfer of the interface electrons. Based on the excellent performances of the two materials, a (-)Ni/VN//Ni1-xVxO2(+) asymmetric supercapacitor (ASC) was fabricated. The obtained ASC exhibits a high specific capacitance of 65.7 F g(-1) and a maximum energy density of 23.3 Wh kg(-1). Moreover, it also exhibits an excellent cycling stability, with 87% specific capacitance retention after 1000 cycles. These impressive results show great potential in the development of high-performance energy storage systems for practical applications.
机译:本研究设计了具有3D分层空心微球(HHMS)结构的Ni1-xVxO2阴极材料的二元过渡金属氧化物。两种金属和3D HHMS结构的结合为电化学反应和有效的离子传输提供了足够的活性位点,使该材料具有出色的电化学性能,例如677.8 F g(-1)的高比电容和增强的倍率能力。如此获得的Ni1-xVxO2 HHMS也被用作原始材料,以通过有效的氮化处理来制造掺杂Ni纳米粒子(NP)的VN 3D HHMS杂化阳极材料。在这种复合材料中,Ni NPs很好地分散在VN骨架中,从而实现了良好的电接触和界面电子的转移。基于两种材料的优异性能,制造了(-)Ni / VN // Ni1-xVxO2(+)不对称超级电容器(ASC)。获得的ASC表现出65.7 F g(-1)的高比电容和23.3 Wh kg(-1)的最大能量密度。此外,它还具有出色的循环稳定性,在1000次循环后的比电容保持率为87%。这些令人印象深刻的结果表明,在为实际应用开发高性能储能系统方面具有巨大潜力。

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