Duan Zhengyang, Song Mingyao, Li Tianguo, Liu Shuli, Xu Xiaojun, Qin Ronggao, He Changhua, Wang Yao, Xu Longqian, Zhang Mengjiao
Faculty of Environmental Science and Engineering, Kunming University of Science and Technology Kunming 650500 PR China.
College of Resources and Environment, Yunnan Agricultural University Kunming 650201 PR China.
RSC Adv. 2018 Sep 10;8(55):31542-31554. doi: 10.1039/c8ra06171h. eCollection 2018 Sep 5.
In this study, a crosslinked yeast/β-cyclodextrin polymer (Y-β-CDP), for use as an effective adsorbent for removal Pb(ii) and Cd(ii) ions from aqueous solution, has been innovatively prepared by grafting β-cyclodextrin (β-CD) onto the surface of baker's yeast (BY) and thiomalic acid as a crosslinker. Several characterization techniques, such as SEM equipped with an EDS analyzer, FTIR, XRD, and XPS were employed characterize the Y-β-CDP. The impact of various operating parameters, such as pH, adsorbent dosage, initial concentration of metal ions, contact time and solution temperature, as well as adsorption kinetics, isotherms and thermodynamics were systematically investigated. The adsorption of Pb(ii) and Cd(ii) on Y-β-CDP reached equilibrium in 25 min, and the kinetic process conforms to the pseudo-second order model. The Langmuir model was used to describe the adsorption isotherm data better than the Freundlich model. The predicted maximum adsorption capacity at 25 °C for Pb(ii) and Cd(ii) was 150.08 and 102.80 mg g, respectively, when the initial concentration of metal ions was 120 mg L. The thermodynamic analysis revealed that the adsorption procedure of Pb(ii) and Cd(ii) onto Y-β-CDP was spontaneous and endothermic. Furthermore, regeneration experiments demonstrated that Y-β-CDP had excellent recyclability. Together, all results suggested that Y-β-CDP could potentially be a promising adsorbent in the purification of water contaminated with heavy metal ions.
在本研究中,通过将β-环糊精(β-CD)接枝到面包酵母(BY)表面,并使用硫代苹果酸作为交联剂,创新性地制备了一种交联酵母/β-环糊精聚合物(Y-β-CDP),用作从水溶液中去除Pb(II)和Cd(II)离子的有效吸附剂。采用了几种表征技术,如配备能谱分析仪的扫描电子显微镜(SEM)、傅里叶变换红外光谱(FTIR)、X射线衍射(XRD)和X射线光电子能谱(XPS)来表征Y-β-CDP。系统研究了各种操作参数,如pH值、吸附剂用量、金属离子初始浓度、接触时间和溶液温度,以及吸附动力学、等温线和热力学。Pb(II)和Cd(II)在Y-β-CDP上的吸附在25分钟内达到平衡,动力学过程符合准二级模型。用Langmuir模型比Freundlich模型能更好地描述吸附等温线数据。当金属离子初始浓度为120 mg/L时,25℃下Pb(II)和Cd(II)的预测最大吸附容量分别为150.08和102.80 mg/g。热力学分析表明,Pb(II)和Cd(II)在Y-β-CDP上的吸附过程是自发的且吸热的。此外,再生实验表明Y-β-CDP具有优异的可回收性。总之,所有结果表明Y-β-CDP在净化受重金属离子污染的水方面可能是一种有前景的吸附剂。