Rezazadeh Najmeh, Eftekhari Mohammad, Akhondi Mahsa, Aljalawee Enmar Ali Jassim
Department of Civil Engineering, Faculty of Engineering, Ferdowsi University, P.O.Box:91775-1111, Mashhad, Iran.
Department of Chemistry, Faculty of Sciences, University of Neyshabur, Neyshabur, Iran.
J Environ Health Sci Eng. 2022 Jun 13;20(2):675-689. doi: 10.1007/s40201-022-00807-0. eCollection 2022 Dec.
A novel and efficient Graphene Oxide-Polyethylene Glycol mono-4-nonylphenyl Ether (GO-PEGPE) nanocomposite was synthesized and used for solid phase extraction of trace levels of Pb in different water and blood samples. The synthesized adsorbent was then characterized by the Fourier Transform-Infrared spectrophotometry (FT-IR), Field Emission-Scanning Electron Microscopy (FE-SEM), Energy dispersive X-ray spectroscopy (EDX) and X-ray diffraction analysis (XRD). To optimize the critical parameters including pH of samples solution, amounts of adsorbent and extraction time, the response surface methodology based on the central composite design (RSM-CCD) was used and based on the results, pH = 6.0, extraction time = 22 min and amounts of adsorbent = 15 mg were selected as the optimum conditions. The relative standard deviation based on seven replicate analysis of 2 µg L Pb was 5.2% and the limit of detection was 0.023 µg L ( = 8). The results of adsorption isotherm investigation show that the adsorption of Pb onto the GO-PEGPE nanocomposite obeyed by the Langmuir isotherm with the maximum adsorption capacity of 69.44 mg g. Also, based on the Temkin and Dubinin-Radushkevich (DR) isotherms, the adsorption of Pb onto the GO-PEGPE nanocomposite is a physisorption phenomenon and the consequences of the kinetic models illustrated that the adsorption of Pb followed by the pseudo second order adsorption kinetic model. Finally, the proposed method was successfully applied for preconcentration of Pb in different water and blood samples of turning industry workers.
合成了一种新型高效的氧化石墨烯-聚乙二醇单-4-壬基苯基醚(GO-PEGPE)纳米复合材料,并将其用于不同水样和血样中痕量铅的固相萃取。然后通过傅里叶变换红外光谱法(FT-IR)、场发射扫描电子显微镜(FE-SEM)、能量色散X射线光谱法(EDX)和X射线衍射分析(XRD)对合成的吸附剂进行了表征。为了优化包括样品溶液pH值、吸附剂用量和萃取时间在内的关键参数,采用了基于中心复合设计的响应面方法(RSM-CCD),并根据结果选择pH = 6.0、萃取时间 = 22分钟和吸附剂用量 = 15毫克作为最佳条件。基于对2 μg/L铅的七次重复分析,相对标准偏差为5.2%,检测限为0.023 μg/L(n = 8)。吸附等温线研究结果表明,铅在GO-PEGPE纳米复合材料上的吸附符合Langmuir等温线,最大吸附容量为69.44 mg/g。此外,根据Temkin和Dubinin-Radushkevich(DR)等温线,铅在GO-PEGPE纳米复合材料上的吸附是一种物理吸附现象,动力学模型结果表明铅的吸附遵循准二级吸附动力学模型。最后,该方法成功应用于选矿行业工人不同水样和血样中铅的预富集。