Department of Chemical Engineering, University of Waterloo, Waterloo, ON, Canada.
Department of Chemical Engineering, University of Waterloo, Waterloo, ON, Canada; Institute of Polymer Research, University of Waterloo, Waterloo, ON, Canada; Waterloo Institute for Nanotechnology, University of Waterloo, Waterloo, ON, Canada.
Chemosphere. 2021 Nov;282:131062. doi: 10.1016/j.chemosphere.2021.131062. Epub 2021 Jun 1.
Carbon nanoparticles (CNP) were synthesized through flame deposition method from a sustainable corn oil precursor. The morphology, particle size, surface chemistry, thermal stability, and zeta potential of the CNP were characterized. The batch adsorption of a cationic dye, methylene blue (MB), by the CNP at various concentrations, pH, and temperatures was evaluated to investigate the CNP's efficacy in industrial wastewater treatment applications. Results revealed the excellent adsorption of MB onto the CNP. The experimental data were then fitted into isotherm models, kinetic models, and thermodynamic models, and the model parameters, constants, Gibb free energy, enthalpy, and entropy were calculated and discussed. Hydrogen bonding and strong electrostatic interaction were the main adsorption mechanism for MB adsorption by the CNP. The CNP exhibited a maximum adsorption capacity of 138.89 mg/g, indicating superior adsorption of MB dye without the need for any further purification and activation steps. The adsorption efficiency did not compromise as the solution temperature increased up to 60 °C, and it can further be enhanced under alkaline conditions. To simulate the practical and industrial use of the developed CNP in textile effluent treatment, successful experiments were conducted in continuous flow adsorption by allowing concentrated MB solution to flow through a designed fixed bed purification system with a CNP filter bed.
通过火焰沉积法从可持续的玉米油前体制备了碳纳米粒子(CNP)。对 CNP 的形态、粒径、表面化学、热稳定性和 Zeta 电位进行了表征。评估了 CNP 在不同浓度、pH 值和温度下对阳离子染料亚甲基蓝(MB)的批量吸附,以研究 CNP 在工业废水处理应用中的效果。结果表明,MB 对 CNP 具有优异的吸附性。然后,将实验数据拟合到等温模型、动力学模型和热力学模型中,并计算和讨论了模型参数、常数、吉布斯自由能、焓和熵。氢键和强静电相互作用是 CNP 吸附 MB 的主要吸附机制。CNP 表现出 138.89 mg/g 的最大吸附容量,表明对 MB 染料具有优异的吸附性能,无需进行任何进一步的纯化和活化步骤。吸附效率在高达 60°C 的溶液温度下也不会降低,并且在碱性条件下可以进一步提高。为了模拟开发的 CNP 在纺织废水处理中的实际和工业应用,通过允许浓缩的 MB 溶液在设计的固定床净化系统中通过 CNP 过滤床连续流动吸附进行了成功的实验。