Ma Chengxiao, Yi Lijuan, Yang Jie, Tao Junhong, Li Junfeng
College of Water Conservancy and Architecture Engineering, Shihezi University Shihezi 832000 Xinjiang PR China
Key Laboratory for Green Process of Chemical Engineering of Xinjiang Bingtuan, School of Chemistry and Chemical Engineering, Shihezi University Shihezi 832000 Xinjiang P. R. China.
RSC Adv. 2020 Aug 19;10(51):30734-30745. doi: 10.1039/d0ra04853d. eCollection 2020 Aug 17.
Herbicides have been ubiquitous in water environments in recent years, and so it is an appealing proposition to develop an efficient adsorbent for the adsorption of diuron. Therefore, the present study investigated a cellulose nanocrystal/organic montmorillonite nanocomposite adsorbent (CNC/CTM) and its adsorption properties towards diuron present in water. The structure and characteristics of the adsorbent used in this study were characterized by various characterization methods. The optimal diuron adsorption conditions for the CNC/CTM nanocomposite were analyzed based on the response surface methodology (RSM). The adsorption isotherms and kinetics of diuron adsorption were investigated. The results indicated that the adsorption process is the result of hydrogen bonding and the hydrophobicity of the alkyl chain. Under the optimal adsorption conditions, 0.07 g L CNC/CTM adsorbed 5.86 mg L diuron in less than 318.68 min and an efficiency of 82.32% could be achieved. The simulation results showed that the adsorption capacity of CNC/CTM for diuron removal followed the Sips model most closely. The maximum adsorption capacity was approximately 69.04 mg g at 288 K. The experimental data was described best by a pseudo-second-order kinetic equation, signifying a chemical adsorption process. The adsorbent can be reused at least five times after simple solvent washing. This study provides a theoretical basis for understanding the adsorption process of diuron present in water.
近年来,除草剂在水环境中无处不在,因此开发一种高效的吸附剂来吸附敌草隆是一个很有吸引力的提议。因此,本研究考察了一种纤维素纳米晶/有机蒙脱石纳米复合吸附剂(CNC/CTM)及其对水中敌草隆的吸附性能。采用多种表征方法对本研究中使用的吸附剂的结构和特性进行了表征。基于响应面法(RSM)分析了CNC/CTM纳米复合材料对敌草隆的最佳吸附条件。研究了敌草隆吸附的等温线和动力学。结果表明,吸附过程是氢键作用和烷基链疏水性的结果。在最佳吸附条件下,0.07 g/L的CNC/CTM在不到318.68分钟内吸附了5.86 mg/L的敌草隆,去除效率可达82.32%。模拟结果表明,CNC/CTM对敌草隆的吸附容量最符合Sips模型。在288 K时,最大吸附容量约为69.04 mg/g。实验数据用准二级动力学方程拟合效果最佳,表明该吸附过程为化学吸附过程。该吸附剂经简单溶剂洗涤后可重复使用至少5次。本研究为理解水中敌草隆的吸附过程提供了理论依据。