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Experimental and modeling analyses for interactions between graphene oxide and quartz sand

机译:氧化石墨烯与石英砂相互作用的实验和模型分析

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摘要

The aim of this study was to quantify the interactions between graphene oxide (GO) and quartz sand by conducting experimental and modeling analyses. The results show that both GO and quartz sand were negatively charged in the presence of 0-50mM NaCl and 5mM CaCl2 (GO = -43.10 to -17.60mV, quartz sand = -40.97 to -8.44mV). In the Derjaguin-Landau-Verwey-Overbeek (DLVO) energy profiles, the adhesion of GO to quartz sand becomes more favorable with increasing NaCl concentration from 0 to 10mM because the interaction energy profile was compressed and the primary maximum energy barrier was lowered. At 50mM NaCl and 5mM CaCl2, the primary maximum energy barrier even disappeared, resulting in highly favorable conditions for GO retention to quartz sand. In the Maxwell model analysis, the probability of GO adhesion to quartz sand ((m)) increased from 2.46 x 10(-4) to 9.98 x 10(-1) at ionic strengths of 0-10mM NaCl. In the column experiments (column length = 10cm, inner diameter = 2.5cm, flow rate = 0.5mLmin(-1)), the mass removal (Mr) of GO in quartz sand increased from 5.4% to 97.8% as the NaCl concentration was increased from 0 to 50mM, indicating that the mobility of GO was high in low ionic strength solutions and decreased with increasing ionic strength. The Mr value of GO at 5mM CaCl2 was 100%, demonstrating that Ca2+ had a much stronger effect than Na+ on the mobility of GO. In addition, the mobility of GO was lower than that of chloride (Mr = 1.4%) but far higher than that of multi-walled carbon nanotubes (Mr = 87.0%) in deionized water. In aluminum oxide-coated sand, the Mr value of GO was 98.1% at 0mM NaCl, revealing that the mobility of GO was reduced in the presence of metal oxides. The transport model analysis indicates that the value of the dimensionless attachment rate coefficient (D-a) increased from 0.11 to 4.47 as the NaCl concentration was increased from 0 to 50mM. In the colloid filtration model analysis, the probability of GO sticking to quartz sand ((f)) increased from 6.23 x 10(-3) to 2.52 x 10(-1) as the NaCl concentration was increased from 0 to 50mM.
机译:这项研究的目的是通过进行实验和模型分析来量化氧化石墨烯(GO)和石英砂之间的相互作用。结果表明,GO和石英砂在0-50mM NaCl和5mM CaCl2存在下(GO = -43.10至-17.60mV,石英砂= -40.97至-8.44mV)均带负电。在Derjaguin-Landau-Verwey-Overbeek(DLVO)能量分布图中,随着NaCl浓度从0增加到10mM,GO对石英砂的粘附变得更加有利,因为相互作用的能量分布被压缩并且主要的最大能量垒降低了。在50mM NaCl和5mM CaCl2下,主要的最大能垒甚至消失了,从而为将GO保留在石英砂上创造了非常有利的条件。在Maxwell模型分析中,当离子强度为0-10mM NaCl时,GO粘附到石英砂((m))的可能性从2.46 x 10(-4)增加到9.98 x 10(-1)。在柱实验中(柱长= 10cm,内径= 2.5cm,流速= 0.5mLmin(-1)),随着NaCl浓度的增加,石英砂中GO的质量去除率(Mr)从5.4%增加到97.8%。从0mM增加到50mM,表明GO在低离子强度溶液中的迁移率很高,并且随着离子强度的增加而降低。 GO在5mM CaCl2下的Mr值为100%,表明Ca2 +对Na的迁移率具有比Na +强得多的作用。此外,去离子水中的GO迁移率低于氯化物(Mr = 1.4%),但远高于多壁碳纳米管(Mr = 87.0%)。在涂有氧化铝的沙子中,GO在0mM NaCl时的Mr值为98.1%,这表明在金属氧化物存在下,GO的迁移率降低了。传输模型分析表明,随着NaCl浓度从0mM增加到50mM,无量纲附着率系数(D-a)的值从0.11增加到4.47。在胶体过滤模型分析中,随着NaCl浓度从0mM增加到50mM,GO粘附到石英砂((f))的可能性从6.23 x 10(-3)增加到2.52 x 10(-1)。

著录项

  • 来源
    《Journal of Environmental Science and Health》 |2017年第4期|368-377|共10页
  • 作者单位

    Seoul Natl Univ, Environm Funct Mat & Water Treatment Lab, Seoul 151921, South Korea;

    Korea Inst Sci & Technol, Ctr Water Resource Cycle Res, Seoul, South Korea;

    Seoul Natl Univ, Environm Funct Mat & Water Treatment Lab, Seoul 151921, South Korea;

    Seoul Natl Univ, Environm Funct Mat & Water Treatment Lab, Seoul 151921, South Korea;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Colloid filtration theory; DLVO theory; graphene oxide; Maxwell model; transport model;

    机译:胶体过滤理论;DLVO理论;氧化石墨烯;麦克斯韦模型;传输模型;
  • 入库时间 2022-08-17 13:33:24

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