Surface energetics of carbon nanotubes–based nanocomposites fabricated by microwave-assisted approach

被引:0
作者
Gengnan Li
Shatila Sarwar
Xianghui Zhang
Chen Yang
Xiaofeng Guo
Xinyu Zhang
Di Wu
机构
[1] Washington State University,Alexandra Navrotsky Institute for Experimental Thermodynamics
[2] Washington State University,The Gene and Linda Voiland School of Chemical Engineering and Bioengineering
[3] Auburn University,Department of Chemical Engineering
[4] Washington State University,Department of Chemistry
[5] Washington State University,Materials Science and Engineering
来源
Journal of Materials Research | 2019年 / 34卷
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摘要
Using ethanol adsorption calorimetry, the surface energetics of two carbon substrates and two products in microwave-assisted carbon nanotube (CNT) growth was studied. In this study, the ethanol adsorption enthalpies of the two graphene-based samples at 25 °C were measured successfully. Specifically, the near-zero differential enthalpies of ethanol adsorption are −75.7 kJ/mol for graphene and −63.4 kJ/mol for CNT-grafted graphene. Subsequently, the differential enthalpy curve of each sample becomes less exothermic until reaching a plateau, −55.8 kJ/mol for graphene and −49.7 kJ/mol for CNT-grafted graphene, suggesting favorable adsorbate–adsorbent binding. Moreover, the authors interpreted and discussed the partial molar entropy and chemical potential of adsorption as the ethanol surface coverage (loading) increases. Due to the low surface areas of carbon black–based samples, adsorption calorimetry could not be performed. This model study demonstrates that using adsorption calorimetry as a fundamental tool and ethanol as the molecular probe, the overall surface energetics of high–surface area carbon materials can be estimated.
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页码:3361 / 3367
页数:6
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