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Adsorption Kinetics, Isotherms, and Thermodynamics of Removal of Anionic Surfactant from Aqueous Solution Using Fly Ash

机译:使用粉煤灰从水溶液中除去阴离子表面活性剂的吸附动力学,等温度和热力学

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摘要

Surfactants are organic compounds which can be used in several applications. However, they can contaminate world water resources causing detrimental effects to human beings, aquatic life, and animals. This paper investigates the adsorption kinetics, isotherms, and thermodynamic properties for the removal of an anionic surfactant, sodium dodecylbenzene sulfonate (SDBS), using fly ash. Characteristics of fly ash such as surface area and pore size analysis and the point of zero charge (PZC) were determined. The effects of parameters such as pH, surfactant concentration, and temperature and the adsorption kinetics, isotherms, and thermodynamic properties and adsorption mechanism were determined. Fly ash is a mesoporous material having surface area and pore size of 1.079 m(2)/g and 9.813 nm and PZC at pH 6.58. pH 2 and the temperature 25 degrees C were optimum for adsorbing SDBS onto fly ash. The adsorption capacity and removal efficiency increased by increasing the concentration of SDBS from 100 to 2000 mg/L, indicating that the increase of surfactant concentration could not saturate the surface of fly ash. The pseudo-second-order and the Langmuir isotherm models showed best fit to the adsorption data and the thermodynamic properties described adsorption as an exothermic, barrierless, non-spontaneous, and entropy-reducing reaction which is more feasible at a lower temperature of 25 degrees C. This indicated that the adsorption occurs by both physisorption and chemisorption with monolayer coverage of SDBS on the surface of fly ash. SDBS surfactant adsorbed onto fly ash mainly through electrostatic interactions between oppositely charged SDBS and fly ash.
机译:表面活性剂是可用于几种应用的有机化合物。然而,他们可以污染世界水资源,对人类,水生生命和动物产生有害影响。本文研究了使用粉煤灰去除了除去阴离子表面活性剂,十二烷基苯磺酸钠(SDB)的吸附动力学,等温物和热力学性能。测定了粉煤灰如表面积和孔径分析的特征和零电荷(PZC)。测定了pH值,表面活性剂浓度和温度和吸附动力学,等温物和热力学性质和吸附机理等参数的影响。粉煤灰是一种介孔材料,具有1.079m(2)/ g和9.813nm和pH6.58的孔径为1.079m(2)/ g和9.813nm的孔径。 pH 2和温度25℃的温度对于吸附到粉煤灰上的最佳最佳。吸附能力和去除效率通过增加100至2000mg / L的SDB浓度增加,表明表面活性剂浓度的增加不能使粉煤灰的表面饱和。伪二阶和Langmuir等温线模型显示出最适合吸附数据,并将热力学性质描述为吸附作为放热,障碍,非自发性和熵减小反应,其在较低温度为25度的温度下更可行C.这表明,吸附发生在粉煤灰表面上的SDBS的单层覆盖。将SDBS表面活性剂吸附在粉煤灰上,主要通过相反电荷的SDB和粉煤灰之间的静电相互作用。

著录项

  • 来源
    《Water, air and soil pollution》 |2020年第10期|509.1-509.13|共13页
  • 作者单位

    Univ Teknol PETRONAS Ctr Biofuel & Biochem Res CBBR Inst Sustainable Living Dept Chem Engn HICoE Bandar Seri Iskandar 32610 Perak Darul Rid Malaysia;

    Univ Teknol PETRONAS Ctr Biofuel & Biochem Res CBBR Inst Sustainable Living Dept Chem Engn HICoE Bandar Seri Iskandar 32610 Perak Darul Rid Malaysia;

    Ligar LP 10 Bisley Rd Ruakura Res Campus Hamilton New Zealand;

    Univ Islam Indonesia Dept Chem Engn Jalan Kaliurang Km 14-5 Sleman Di 55584 Yogyakarta Indonesia;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Surfactant; Wastewater; Adsorption; Isotherm; Kinetics; Thermodynamic properties;

    机译:表面活性剂;废水;吸附;等温器;动力学;热力学性质;

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