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聚氯乙烯微塑料对典型单羟基菲的吸附机制
引用本文:包振宗,陈智锋,祁增华,王广钊,蔡宗苇.聚氯乙烯微塑料对典型单羟基菲的吸附机制[J].色谱,2021,39(8):870-877.
作者姓名:包振宗  陈智锋  祁增华  王广钊  蔡宗苇
作者单位:1.广东工业大学环境科学与工程学院, 广东 广州 5100062.香港浸会大学化学系, 环境与生物分析国家重点实验室, 香港 008523.长江师范学院电子信息工程学院, 超常配位键工程与新材料技术重庆市重点实验室, 重庆 408100
基金项目:广州市科技计划项目(202102021010);国家自然科学基金(91543202)
摘    要:为丰富微塑料与有机污染物间的相互作用机制相关数据,以3-羟基菲(3-OHP,C14 H10 O)为菲单羟基衍生物代表污染物,聚氯乙烯(PVC)微塑料为研究对象,研究了PVC微塑料在水环境中对3-OHP的吸附行为,并就相关吸附机制进行了深入探讨.该研究借助扫描电镜(SEM)、X射线衍射仪(XRD)、傅里叶红外光谱(FT-...

关 键 词:聚氯乙烯  3-羟基菲  紫外分光光度计  吸附  机理
收稿时间:2020-09-07

Adsorption mechanism of typical monohydroxyphenanthrene on polyvinyl chloride microplastics
BAO Zhenzong,CHEN Zhifeng,QI Zenghua,WANG Guangzhao,CAI Zongwei.Adsorption mechanism of typical monohydroxyphenanthrene on polyvinyl chloride microplastics[J].Chinese Journal of Chromatography,2021,39(8):870-877.
Authors:BAO Zhenzong  CHEN Zhifeng  QI Zenghua  WANG Guangzhao  CAI Zongwei
Institution:1. School of Environmental Science and Engineering, Guangdong University of Technology, Guangzhou 510006, China2. State Key Laboratory of Environmental and Biological Analysis, Department of Chemistry, Hong Kong Baptist University, Hong Kong 00852, China3. Key Laboratory of Extraordinary Bond Engineering and Advanced Materials Technology of Chongqing, School of Electronic Information Engineering, Yangtze Normal University, Chongqing 408100, China
Abstract:To enrich data related to the interaction mechanism between microplastics and organic pollutants, in this study, 3-hydroxy-phenanthrene (3-OHP, C14H10O), a phenanthrene derivative, was selected as a representative pollutant, and polyvinyl chloride (PVC) microplastics were chosen as the research objects. We investigated the adsorption behavior of 3-OHP on PVC microplastics in aqueous solutions and explored the adsorption mechanism in detail. The PVC microplastics were characterized by scanning electron microscopy (SEM), X-ray diffraction (XRD), and Fourier transform infrared (FT-IR) spectroscopy. The standard curves of the ultraviolet (UV) absorption spectrum of the target pollutant were obtained using a UV spectrophotometer. The fitting coefficient values of all standard curves were higher than 0.99 (R2>0.99). To ensure the accuracy of the UV absorption spectrum, the pollutant concentration gradient was set according to the absorbance (Abs) values, which were higher than 0.438. The measured concentrations were calculated using a standard curve equation. The adsorption mechanism of 3-OHP on PVC microplastics in an aqueous solution was studied by combining adsorption models (adsorption kinetics model, adsorption isotherm model, and adsorption thermodynamics model) and density functional theory (DFT) calculations. The results are as follows: (1) From the adsorption kinetics experiment, the pseudo-second-order kinetic model had the best fitting degree, and the fitting coefficient of adsorption kinetics was 0.998 (R2=0.998). Hence, 3-OHP adsorption on PVC microplastics may be attributed to surface adsorption and external liquid film diffusion; the equilibrium adsorption amount was 36.866 μg/g after 24 h. (2) The adsorption isotherm experiment showed that the Langmuir and Freundlich isotherm models were more suitable for describing the adsorption mechanism of 3-OHP adsorption on PVC microplastics because of the satisfactory fitting coefficient (R 2=0.956 and 0.907), suggesting that the adsorption mode was mainly single-layer adsorption with a small amount of multilayer adsorption. The maximum adsorption amount of 3-OHP adsorption on PVC microplastics was 408 μg/g; (3) the adsorption thermodynamics results showed that the adsorption efficiency of 3-OHP adsorption on PVC microplastics decreased with increasing temperature, indicating that the adsorption of 3-OHP on PVC microplastics was a spontaneous and exothermic adsorption process; (4) the salinity experiment results showed that salinity had little effect on the adsorption efficiency of 3-OHP on PVC microplastics; (5) DFT calculations showed that PVC had a relatively low binding energy to 3-OHP. Therefore, we suggest that the main adsorption mechanism of 3-OHP on PVC microplastics may be the hydrophobic effect; weak hydrogen bonding, halogen bonding, and π-π conjugate action could also play a role in 3-OHP adsorption on PVC. These results reveal the interaction mechanism between PVC microplastics and organic chemicals, and enhance our understanding of the environmental behavior of PVC microplastics in aqueous solutions. To serve as a reference in scientific evaluations of the environmental impact of microplastics, future studies should focus on obtaining toxicological data for the microplastics.
Keywords:polyvinyl chloride  3-hydroxyphenanthrene  ultraviolet spectrophotometry (UV)  adsorption  mechanism  
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