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Phase-controlled synthesis of α-NiS nanoparticles confined in carbon nanorods for High Performance Supercapacitors

机译:用于高性能超级电容器的碳纳米棒中的α-NiS纳米粒子的相控合成

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A facile and phase-controlled synthesis of α-NiS nanoparticles (NPs) embedded in carbon nanorods (CRs) is reported by in-situ sulfurating the preformed Ni/CRs. The nanopore confinement by the carbon matrix is essential for the formation of α-NiS and preventing its transition to β-phase, which is in strong contrast to large aggregated β-NiS particles grown freely without the confinement of CRs. When used as electrochemical electrode, the hybrid electrochemical charge storage of the ultrasmall α-NiS nanoparticels dispersed in CRs is benefit for the high capacitor (1092, 946, 835, 740?F g?1 at current densities of 1, 2, 5, 10?A g?1, respectively.). While the high electrochemical stability (approximately 100% retention of specific capacitance after 2000 charge/discharge cycles) is attributed to the supercapacitor-battery electrode, which makes synergistic effect of capacitor (CRs) and battery (NiS NPs) components rather than a merely additive composite. This work not only suggests a general approach for phase-controlled synthesis of nickel sulfide but also opens the door to the rational design and fabrication of novel nickel-based/carbon hybrid supercapacitor-battery electrode materials.
机译:据报道,通过现场硫化预制的Ni / CRs,可以轻松,阶段控制地合成嵌入碳纳米棒(CRs)中的α-NiS纳米颗粒(NPs)。碳基质对纳米孔的限制对于形成α-NiS并防止其过渡到β相至关重要,这与不受CRs限制而自由生长的大块聚集的β-NiS粒子形成强烈反差。分散在CRs中的超小型α-NiS纳米颗粒用作电化学电极时,其混合电化学电荷存储有利于高电容器(1092、946、835、740?F g ?1 分别为1,2,5,10?A g ?1 。)。超级电容器电池电极具有较高的电化学稳定性(2000次充电/放电循环后约100%的比电容保持率),这使电容器(CRs)和电池(NiS NPs)组件产生了协同作用,而不仅仅是添加剂综合。这项工作不仅为硫化镍的相控合成提供了一种通用方法,而且为新型镍基/碳杂化超级电容器电池电极材料的合理设计和制造打开了大门。

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