微塑料对水中典型β阻断剂的吸附行为研究

Study on the Adsorption Behavior of Typical β-blockers on Microplastics in Water

  • 摘要: 作为污染物在水生环境中传播的理想载体, 微塑料可以吸附水中的有机污染物如β阻断剂, 这不仅影响污染物的环境归趋, 还可能引发不可预测的生态风险。笔者研究了微塑料〔聚丙烯(PP)和聚乙烯(PE)〕对典型β阻断剂普萘洛尔(PRO)和阿替洛尔(ATL)的吸附行为。通过扫描电子显微镜、傅里叶变换红外光谱等方法对2种微塑料进行表征, 结合批量吸附试验对比分析PP和PE微塑料对PRO和ATL的吸附行为, 并考察了不同环境条件对吸附过程的影响。结果表明, (1)PP因表面粗糙多孔(比表面积2.625 2 m2·g-1)和较低结晶度(51.44%), 对PRO和ATL的吸附量高于PE; PRO由于具有较高的疏水性(lg Kow ≈ 3.48), 其在疏水的PP上吸附量高于ATL, 然而在PE上的吸附量与ATL相差不大。(2)环境因素对吸附行为的影响: 当pH值为3~9时PRO吸附量随pH值升高而显著增加(其吸附主导机制由静电作用向疏水作用转换), 当pH>10时吸附量变化不大, 而ATL受pH值影响较小; 盐度会抑制吸附, 且Ca2+比Na+具有更强的抑制作用(阳离子竞争吸附); 腐殖酸(HA)对吸附具有双重作用, 浓度较低时(< 100 mg·L-1)能通过桥连作用促进PRO吸附, 浓度较高时(>150 mg·L-1)因位点竞争导致吸附量下降, 但对亲水的ATL的影响较弱。本研究阐明了PP和PE吸附2种不同疏水性β阻断剂的吸附动力学、等温线特征及关键环境影响因子, 为评估β阻断剂在含微塑料的水生环境中的迁移转化及潜在生态风险提供了重要的理论依据。

     

    Abstract: Microplastics, as vectors of contaminants, can adsorb organic pollutants in aquatic environments such as beta-blockers, which may affect their environmental fate and also cause unpredictable ecological risks. The adsorption performances of typical β-blockers propranolol (PRO) and atenolol (ATL) on microplastics polypropylene (PP) and polyethylene (PE) were studied in this paper. The two types of microplastics were characterized by scanning electron microscopy and Fourier transform infrared absorption spectroscopy. The adsorption behaviors of PRO and ATL by PP and PE microplastics were comparatively analyzed based on batch adsorption experiments, and the influences of different environmental factors on the adsorption process were investigated. The experimental results show that PP had higher adsorption capacity for PRO and ATL than PE because of its rough and porous surface (specific surface area of 2.625 2 m2·g-1) and lower crystallinity (51.44%). PRO exhibited a higher adsorption capacity on hydrophobic PP than ATL due to its high hydrophobicity (lg Kow ≈ 3.48), whereas the adsorption capacity of PRO on PE is not much different from that of ATL. Furthermore, the influence of environmental factors on adsorption behavior was explored and results indicated that the adsorption capacity of PRO was significantly increased with the increase of pH from 3 to 9 (the dominant adsorption mechanism shifted from electrostatic attractions to hydrophobic interactions), and the adsorption capacity did not obviously change when pH > 10. But ATL adsorption was less affected by solution pH. The PRO and ATL adsorption were inhibited by salinity with Ca2+ exhibiting a stronger inhibitory effect than Na+ (cation competitive adsorption). Humic acid has a dual effect on PRO adsorption. When the concentration of humic acid is low (< 100 mg·L-1), PRO adsorption could be promoted through bridging, while its adsorption was decreased due to site competition when the concentration of humic acid is high (> 150 mg·L-1). But humic acid had little effect on hydrophilic ATL adsorption. The adsorption kinetics, isothermal characteristics of two different hydrophobic β-blockers by PP and PE, and key environmental impact factors were discussed in this study. These results will provide an important theoretical basis for evaluating the migration and transformation of β-blockers and potential ecological risks in aquatic environments containing microplastics.

     

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