Huang Zhujian, Wu Pingxiao, Gong Beini, Dai Yaping, Chiang Pen-Chi, Lai Xiaolin, Yu Guangwei
College of Natural Resources and Environment, South China Agricultural University, Guangzhou 510642, China.
School of Environment and Energy, South China University of Technology, Guangzhou Higher Education Mega Centre, Guangzhou 510006, China.
PLoS One. 2016 Jul 22;11(7):e0159802. doi: 10.1371/journal.pone.0159802. eCollection 2016.
To achieve a satisfactory removal efficiency of heavy metal ions from wastewater, silane-functionalized montmorillonite with abundant ligand-binding sites (-NH2) was synthesized as an efficient adsorbent. Ca-montmorillonite (Ca-Mt) was functionalized with 3-aminopropyl triethoxysilane (APTES) to obtain the APTES-Mt products (APTES1.0CEC-Mt, APTES2.0CEC-Mt, APTES3.0CEC-Mt, APTES4.0CEC-Mt) with enhanced adsorption capacity for Co2+. The physico-chemical properties of the synthesized adsorbents were characterized by spectroscopic and microscopic methods, and the results demonstrated that APTES was successfully intercalated into the gallery of Ca-Mt or grafted onto the surface of Ca-Mt through Si-O bonds. The effect of solution pH, ionic strength, temperature, initial concentrations and contact time on adsorption of Co2+ by APTES-Mt was evaluated. The results indicated that adsorption of Co2+ onto Ca-Mt, APTES1.0CEC-Mt and APTES2.0CEC-Mt can be considered to be a pseudo-second-order process. In contrast, adsorption of Co2+ onto APTES3.0CEC-Mt and APTES4.0CEC-Mt fitted well with the pseudo-first-order kinetics. The adsorption isotherms were described by the Langmuir model, and the maximum adsorption capacities of APTES1.0CEC-Mt, APTES2.0CEC-Mt, APTES3.0CEC-Mt and APTES4.0CEC-Mt were 25.1, 33.8, 61.6, and 61.9 mg·g-1, respectively. In addition, reaction temperature had no impact on the adsorption capacity, while both the pH and ionic strength significantly affected the adsorption process. A synergistic effect of ion exchange and coordination interactions on adsorption was observed, thereby leading to a significant enhancement of Co2+ adsorption by the composites. Thus, APTES-Mt could be a cost-effective and environmental-friendly adsorbent, with potential for treating Co2+-rich wastewater.
为了实现从废水中对重金属离子的满意去除效率,合成了具有丰富配体结合位点(-NH2)的硅烷功能化蒙脱石作为高效吸附剂。用3-氨丙基三乙氧基硅烷(APTES)对钙蒙脱石(Ca-Mt)进行功能化,以获得对Co2+具有增强吸附能力的APTES-Mt产物(APTES1.0CEC-Mt、APTES2.0CEC-Mt、APTES3.0CEC-Mt、APTES4.0CEC-Mt)。通过光谱和显微镜方法对合成吸附剂的物理化学性质进行了表征,结果表明APTES成功地插入到Ca-Mt的层间或通过Si-O键接枝到Ca-Mt的表面。评估了溶液pH值、离子强度、温度、初始浓度和接触时间对APTES-Mt吸附Co2+的影响。结果表明,Co2+在Ca-Mt、APTES1.0CEC-Mt和APTES2.0CEC-Mt上的吸附可被认为是一个准二级过程。相比之下,Co2+在APTES3.0CEC-Mt和APTES4.0CEC-Mt上的吸附符合准一级动力学。吸附等温线用Langmuir模型描述,APTES1.0CEC-Mt、APTES2.0CEC-Mt、APTES3.0CEC-Mt和APTES4.0CEC-Mt的最大吸附容量分别为25.1、33.8、61.6和61.9 mg·g-1。此外,反应温度对吸附容量没有影响,而pH值和离子强度均显著影响吸附过程。观察到离子交换和配位相互作用对吸附的协同效应,从而导致复合材料对Co2+的吸附显著增强。因此,APTES-Mt可能是一种具有成本效益且环境友好的吸附剂,具有处理富含Co2+废水的潜力。