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全氟辛烷磺酸在不同理化性质土壤上的吸附动力学、等温线及机制

Sorption kinetics, isotherms and mechanisms of PFOS on soils with different physicochemical properties.

作者信息

Wei Changlong, Song Xin, Wang Qing, Hu Zhihao

机构信息

Key Laboratory of Soil Environment and Pollution Remediation, Institute of Soil Science, Chinese Academy of Sciences, Nanjing 210008, China; University of Chinese Academy of Sciences, Beijing 100049, China.

Key Laboratory of Soil Environment and Pollution Remediation, Institute of Soil Science, Chinese Academy of Sciences, Nanjing 210008, China.

出版信息

Ecotoxicol Environ Saf. 2017 Aug;142:40-50. doi: 10.1016/j.ecoenv.2017.03.040. Epub 2017 Apr 5.

Abstract

Perfluorooctane sulfonate (PFOS), an emerging contaminant, is environmentally persistent, bioaccumulative and toxic to human health and ecosystems. It has been widely detected in groundwater, surface water, soil and sediment. So far, very few research has reported on the PFOS sorption behaviors onto soils, one of the primary processes that influence its fate and transport in the subsurface. In this study, the sorption and desorption of PFOS onto six soils with different physicochemical properties were investigated. Kinetic and equilibrium studies of PFOS sorption onto six soils were carried out in batch experiment. The sorption kinetics of PFOS on the six soils demonstrated that PFOS sorption reached equilibrium within 48h, and the well-fitted pseudo-second-order kinetic model to experimental data suggested that chemisorption was involved in PFOS sorption on soils. The intraparticle diffusion model results indicated that both film diffusion and intraparticle diffusion were the rate-limiting steps for five of the six soil samples, while the intraparticle diffusion was the only limiting step in the PFOS sorption on the sixth soil. PFOS sorption isotherms can be described by the Freundlich model well for all six soils (R=0.979-0.999). The correlation analysis between K of PFOS and the physicochemical properties of the soils showed that a positive correlation between K and AlO, SOC and FeO. The FTIR data demonstrated hydrophobic interaction, ion exchange, surface complexing and hydrogen bonding might all play a role in the PFOS sorption onto soil samples. PFOS sorption onto soil minerals, especially iron oxide minerals, needs to be further explored in future.

摘要

全氟辛烷磺酸(PFOS)作为一种新出现的污染物,具有环境持久性、生物累积性,且对人类健康和生态系统有毒害作用。它已在地下水、地表水、土壤和沉积物中被广泛检测到。到目前为止,关于PFOS在土壤上的吸附行为的研究报道极少,而土壤吸附是影响其在地下环境中归宿和迁移的主要过程之一。在本研究中,对PFOS在六种具有不同物理化学性质的土壤上的吸附和解吸进行了研究。通过批量实验对PFOS在六种土壤上的吸附进行了动力学和平衡研究。PFOS在六种土壤上的吸附动力学表明,PFOS吸附在48小时内达到平衡,且实验数据与伪二级动力学模型拟合良好,这表明化学吸附参与了PFOS在土壤上的吸附过程。颗粒内扩散模型结果表明,六种土壤样品中有五种的膜扩散和颗粒内扩散均为限速步骤,而颗粒内扩散是PFOS在第六种土壤上吸附的唯一限速步骤。所有六种土壤的PFOS吸附等温线均能很好地用Freundlich模型描述(R = 0.979 - 0.999)。PFOS的K值与土壤物理化学性质之间的相关性分析表明,K与AlO、SOC和FeO呈正相关。傅里叶变换红外光谱(FTIR)数据表明,疏水相互作用、离子交换、表面络合和氢键可能都在PFOS吸附到土壤样品的过程中发挥作用。未来需要进一步探索PFOS在土壤矿物尤其是氧化铁矿物上的吸附情况。

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