Self-assembled 3D hierarchical nanostructure of reduced GO nanosheets intercalated with CDs for high-rate supercapacitor electrodes
首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >Self-assembled 3D hierarchical nanostructure of reduced GO nanosheets intercalated with CDs for high-rate supercapacitor electrodes
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Self-assembled 3D hierarchical nanostructure of reduced GO nanosheets intercalated with CDs for high-rate supercapacitor electrodes

机译:用于高速超级电容电极的CD嵌入的自组装3D分层纳米结构嵌入CD.

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AbstractA simple hydrothermal method for the preparation of 3D net-work hierarchical nanostructures consisting of carbon dots (CDs) intercalated between reduced graphene oxide (GO) nanosheets (denoted as CDs@rGONS) is demonstrated in this work. The incorporation of CDs as nano-spacers has effectively preventing aggregations of the rGONS, and at the same time greatly improved the reduction efficiency of the GO, both of which obviously enhance the electrochemical performance of the hierarchical nanostructures. Simple supercapacitors were assembled using the samples with different CDs/GO mass ratios, and it was proved that for the sample obtained with a CDs/GO mass ratio of 0.6 (denoted as CDs@rGONS0.6), a high specific capacitance of 239?F/g was obtained according to the CV curves. Moreover, a high energy density of 24?Wh/kg at 1 A/g and a high power density of 15.8?kW/kg at 10 A/g were obtained respectively, both of which are much higher than those without the presence of CDs. The good cycle stability (92.1% capacitance retention after 11500 cycles) of the sample was studied too. These excellent electrochemical performances proved their potential energy storage applications.Highlights?Self-assembly 3D nanostructure of reduced GO nanosheets intercalated with CDs.?CDs as nano-spacers obviously enhance their electrochemical performance.?Supercapacitors with excellent performances were achieved for CDs@rGONS0.6.]]>
机译:<![CDATA [ 抽象 一种简单的水热方法,用于制备3D网络点(CDS)之间的3D净工作分层纳米结构在这项工作中,证明了石墨烯氧化物(GO)纳米烯(GO)纳米片(表示为CDS @ RGONS)。 CD作为纳米间隔物的掺入具有有效防止RGONS的聚集,同时大大提高了去的降低效率,两者明显增强了等级纳米结构的电化学性能。使用具有不同CDS / GO质量比的样品组装简单的超级电容器,并证明了对于使用CDS / GO质量比为0.6的样品(表示为CDS @ RGONS 0.6 ),根据CV曲线获得239〜F / g的高比电容。此外,分别获得了高能量密度为1A / g的高能量密度和10A / g的高功率密度为15.8×kg / kg,两者均远高于没有CD的存在。研究了样品的良好循环稳定性(11500次循环后的92.1%的电容保留)。这些优异的电化学性能证明了它们的潜在能量存储应用。 突出显示 自组装3D纳米结构用CD嵌入了CDS intercalated。 CD作为纳米垫片显然增强了它们的电化学性能。 CDS @ Rgons 0.6 ]]>

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