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Green and Effective Removal of Aqueous Graphene Oxide under UV-Light Irradiation

机译:紫外光下绿色高效去除氧化石墨烯水溶液

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摘要

The potential extensive application of graphene oxide (GO) in various fields results in the possibility of its release into the natural environment with negative impacts on humans and the ecosystem. The UV-induced removal behavior of aqueous GO was evaluated in this study, and the effect of various parameters (including initial GO concentration, initial solution pH and co-existing ions) on removal rate of GO were investigated in detail. The results showed that UV-light induced a maximum removal rate of GO of 99.1% after 32 h irradiation without any additives, and that the photo-induced removal process in all cases fitted well with pseudo-first-order kinetics. Under optimal conditions, GO was completely removed, with initial GO concentrations of 10 mg/L while adjusting solution pH to 3 or adding Ca2+-containing salt. The GO and photoreduced graphene oxide (prGO) were characterized using High-resolution Transmission Microscopy (HRTEM), X-ray Photoelectron Spectroscopy (XPS), and Fourier-transform Infrared Spectroscopy (FT-IR). The radical species trapping experiments and Electron Spin Resonance (ESR) tests indicated that self-reduction of GO upon UV-light exposure could be achieved via photogenerated electrons from a GO semiconductor. Further mechanism study showed that the high efficiency of UV-induced GO removal came from UV-induced photoreduction, and pH-induced or cation-induced coagulation. This study provided a green and effective method to remove GO from aqueous solutions.
机译:氧化石墨烯(GO)在各个领域的潜在广泛应用导致其释放到自然环境中的可能性,对人类和生态系统产生负面影响。在这项研究中评估了UV诱导的GO的去除行为,并详细研究了各种参数(包括初始GO浓度,初始溶液pH和共存离子)对GO去除速率的影响。结果表明,在不添加任何添加剂的情况下,紫外线在32 h照射后的最大GO去除率为99.1%,并且在所有情况下,光诱导的去除过程都完全符合拟一级动力学。在最佳条件下,GO的初始浓度为10 mg / L,同时将溶液的pH值调节至3或添加含Ca 2 + 的盐,可以完全去除GO。使用高分辨率透射显微镜(HRTEM),X射线光电子能谱(XPS)和傅里叶变换红外光谱(FT-IR)对GO和光还原氧化石墨烯(prGO)进行了表征。自由基物种捕获实验和电子自旋共振(ESR)测试表明,通过GO半导体产生的光生电子,可以实现UV暴露时GO的自还原。进一步的机理研究表明,紫外线诱导的GO去除的高效性来自紫外线诱导的光还原以及pH诱导或阳离子诱导的凝结。这项研究提供了一种从水溶液中去除GO的绿色有效方法。

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