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水分子簇通过π-PAHB 促进可离子化有机污染物与芳构化生物炭的分子相互作用:吸附实验和 DFT 计算。

Water clusters contributed to molecular interactions of ionizable organic pollutants with aromatized biochar via π-PAHB: Sorption experiments and DFT calculations.

机构信息

Department of Environmental Science, Zhejiang University, Hangzhou, 310058, China; Zhejiang Provincial Key Laboratory of Organic Pollution Process and Control, Hangzhou, 310058, China.

Department of Environmental Science, Zhejiang University, Hangzhou, 310058, China; Zhejiang Provincial Key Laboratory of Organic Pollution Process and Control, Hangzhou, 310058, China.

出版信息

Environ Pollut. 2018 Sep;240:342-352. doi: 10.1016/j.envpol.2018.04.083. Epub 2018 May 8.

Abstract

Molecular interactions between biochars and ionizable organic pollutants (IOPs) are of great concern in natural environments, however the role of water clusters on the biochar surface remain unclear. The pH-dependent adsorption of aniline, phenol, 2-chlorophenol, 3-chlorophenol, 4-chlorophenol, 4-methylphenol and 4-nitrophenol onto bamboo wood derived biochar (BW700) as a model was conducted to identify conventional and novel interaction mechanisms between aromatized surface and IOPs. The dissociation constant (pK) of surface functional groups of BW700 was characterized by acid-base titration and Zeta potential measurements. The pH-dependent adsorption behavior depended on the pK of IOPs and also related to the pK of biochar surface. An obvious peak of adsorption coefficients (K) in the range of solution pH was shaped at pH = (pK + pK)/2, which cannot be well explained by the conventional mechanisms such as hydrophobic effects, π-π interaction, electrostatic attractions, and hydrogen-binding. The contribution of ice-like adlayer (water clusters) on aromatic surface as H-acceptors is proposed for the first time to the adsorption peak of IOP as H-donors at pH. Density functional theory (DFT) calculations provided a possible structure of the complex combined with ice-like adlayer and aromatic substrate of BW700, and indicated that the adsorbing peak resulted from the multiple π-bond and polarization assisted H-bond (π-PAHB) interactions. Three distinct properties of π-PAHB were given, based on multiple π-bond, hydrophobicity-dependence and pH sensitivity. This novel mechanism extends the definition of H-bonds for better understanding the molecular interactions of IOP with carbonaceous materials and their environmental fate.

摘要

生物炭与可电离有机污染物(IOPs)之间的分子相互作用在自然环境中备受关注,但生物炭表面上水簇的作用仍不清楚。本研究以竹基生物炭(BW700)为模型,采用 pH 依赖吸附实验,研究了苯胺、苯酚、2-氯苯酚、3-氯苯酚、4-氯苯酚、4-甲基苯酚和 4-硝基苯酚在该生物炭上的吸附作用,以确定芳香化表面与 IOPs 之间的常规和新型相互作用机制。采用酸碱滴定和 Zeta 电位测量法对 BW700 表面官能团的离解常数(pK)进行了表征。pH 依赖吸附行为不仅取决于 IOPs 的 pK,还与生物炭表面的 pK 有关。在溶液 pH 值的范围内,吸附系数(K)出现了一个明显的峰值,其 pH 值为(pK + pK)/2,这不能用常规的机制(如疏水作用、π-π 相互作用、静电吸引和氢键)来很好地解释。首次提出,在 pH 值条件下,冰状吸附层(水簇)作为 H 受体,对作为 H 供体的 IOP 吸附峰的贡献。密度泛函理论(DFT)计算提供了一个可能的结构,结合冰状吸附层和 BW700 的芳香表面,表明吸附峰是由于多个π键和极化辅助氢键(π-PAHB)相互作用产生的。基于多重π键、疏水性依赖性和 pH 敏感性,给出了π-PAHB 的三个不同特性。该新型机制扩展了氢键的定义,有助于更好地理解 IOP 与碳质材料的分子相互作用及其环境归宿。

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