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Synthesis of Hollow Carbon Nanoshells and Their Application for Supercapacitors

机译:中空碳纳米壳的合成及其对超级电容器的应用

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This work is devoted to the study of the synthesis, the description of the structure, and the use of hollow carbon nanoshells 3-5 nm in size. Hollow carbon nanoshells were synthesized by thermolysis of a mixture of nickel acetate and citric acid in the temperature range of 500-700 degrees C. During the chemical reaction, nickel nuclei similar to 3-5 nm in size are formed, separated from each other by carbon layers. At an annealing temperature of 600 degrees C, the most ordered, close-packed structure is formed, evenly distributed throughout the sample. The etching of nickel with nitric acid resulted in hollow carbon nanoshells with a high specific surface area (similar to 1200 m(2)/g) and a homogeneous structure. Raman spectroscopy shows that the graphene-like structure of carbon nanoshells is preserved before and after the etching of nickel, and their defect density does not increase, which enables them to be subjected to new processing (functionalization) in order to obtain additional physical properties. The resulting carbon nanoshells were used as active material of the supercapacitor electrodes. The conducted electrochemical measurements showed that the specific capacitance of the supercapacitor did not fall below 120 F/g at a current density of 0.3 to 3 A after 800 charge/discharge cycles.
机译:这项工作致力于研究合成,结构的描述,以及使用中空碳纳米型3-5nm的尺寸。通过在500-700℃的温度范围内的镍醋酸镍和柠檬酸的混合物的热解来合成中空碳纳米。在化学反应过程中,形成类似于3-5nm的镍核,彼此分开碳层。在600℃的退火温度下,形成最有序的封闭结构,在整个样品中均匀分布。用硝酸的蚀刻镍产生中空碳纳米型具有高比表面积(类似于1200μm(2)/ g)和均匀的结构。拉曼光谱表明,在镍的蚀刻之前和之后保留了碳纳米片的石墨烯结构,并且它们的缺陷密度不会增加,这使得它们能够进行新的处理(官能化)以获得额外的物理性质。将得到的碳纳米壳用作超级电容器电极的活性材料。传导的电化学测量表明,在800次充电/放电循环之后,超电容器的特定电容在0.3至3A的电流密度下没有低于120 f / g。

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