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多壁碳纳米管作为添加剂对生物质衍生碳在超级电容器应用中的影响。

Influence of Multiwalled Carbon Nanotubes as Additives in Biomass-Derived Carbons for Supercapacitor Applications.

机构信息

Lab2PT, Instituto de Ciências Sociais , Universidade do Minho , 4710-057 Braga , Portugal.

出版信息

ACS Appl Mater Interfaces. 2019 Feb 13;11(6):6066-6077. doi: 10.1021/acsami.8b19246. Epub 2019 Jan 31.

DOI:10.1021/acsami.8b19246
PMID:30652469
Abstract

Glucose-derived carbon/carbon nanotube (CNT) hybrid materials were prepared by hydrothermal carbonization of glucose in the presence of CNTs and subsequent carbonization, physical activation, or chemical activation. The proportion of CNTs added during the hydrothermal polymerization of glucose was varied to ascertain the optimum dose to maximize the performance of the carbon hybrids in supercapacitor applications. Both the thermal treatment applied and the addition of CNTs lead to changes in the textural and chemical properties of the activated carbons. It was observed that samples bearing CNTs exhibit higher number of nucleation centers for glucose oligomers to polymerize, and consequently, the behavior of the hydrothermal carbon toward activation differs according to the activating agent employed. Moreover, the initial chemical speciation dominated by acidic groups shifts to more basic functionalities (quinones and carbonyl groups) with the addition of CNTs. The effect of the different physicochemical properties of the prepared carbons on their electrochemical behavior was evaluated. The addition of 2 wt % of CNTs and subsequent chemical activation leads to electrode materials yielding 206 F g and 78% of capacitance retention up to 0.8 V and 20 A g and high rate cyclability (97% after 5000 cycles). The outstanding performance is ascribed to the high surface area, narrow mesopores, and phenol/carbonyl surface functionalities, which enhance molecular diffusion, the amount of stored energy, and electronic transportation, respectively.

摘要

葡萄糖衍生的碳/碳纳米管(CNT)杂化材料是通过 CNT 存在下的葡萄糖水热碳化以及随后的碳化、物理活化或化学活化制备的。在葡萄糖的水热聚合过程中添加 CNT 的比例变化,以确定最佳剂量,从而最大限度地提高超级电容器应用中碳杂化物的性能。热处理的应用和 CNT 的添加都会导致活性炭的结构和化学性质发生变化。结果表明,含有 CNT 的样品具有更多的葡萄糖低聚物聚合的成核中心,因此,水热碳的活化行为根据所使用的活化剂而有所不同。此外,初始化学形态主要由酸性基团向更碱性的官能团(醌和羰基)转变,随着 CNT 的添加。制备的碳的不同物理化学性质对其电化学行为的影响进行了评估。添加 2wt%的 CNT 并随后进行化学活化,得到的电极材料在 0.8V 和 20A/g 下具有 206F/g 的比电容和 78%的电容保持率,以及高倍率循环稳定性(5000 次循环后保持 97%)。优异的性能归因于高比表面积、窄介孔、酚/羰基表面官能团,分别提高了分子扩散、储能量和电子传输。

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