Chen Guang-Cai, Shan Xiao-Quan, Wang Yu-Sheng, Wen Bei, Pei Zhi-Guo, Xie Ya-Ning, Liu Tao, Pignatello Joseph J
State Key Laboratory of Environmental Chemistry and Ecotoxicology, Research Center for Eco-Environmental Sciences, Chinese Academy of Sciences, Haidian District, Beijing, China.
Water Res. 2009 May;43(9):2409-18. doi: 10.1016/j.watres.2009.03.002. Epub 2009 Mar 11.
Adsorption equilibrium of 2,4,6-trichlorophenol (TCP) on multi-walled carbon nanotubes (MWCNTs) was investigated to explore the possibility of using MWCNTs for concentration, detection and removal of TCP from contaminated water. The adsorption of TCP on MWCNTs at pH 4 was nonlinear, reversible and best fit by a Polanyi-Manes model. Oxidation treatment increased surface area and introduced hydrophilic carboxylic groups to the defect sites of MWCNTs, hence increased the sorption of TCP and Cu(II) individually. Cu(II) suppressed the sorption of TCP on oxidized MWCNTs15A, but had little effect on as-grown MWCNTs15. TCP had no influence on Cu(II) sorption to either. The mechanisms of Cu(II) suppression effect on TCP adsorption are ascribed to the formation of surface complexes of Cu(II), which was verified by X-ray absorption spectroscopy. Cu(II) exerts a cross-linking effect of functional groups on adjacent tubes, creating a more tightly knit bundle and suppressing the condensation of TCP in the pore spaces between the tubes. The large hydration sphere around surface complexes of Cu(II) may also intrude or shield hydrophilic sites, leading to the "crowding out" of TCP around the Cu(II)-complexed sites.
研究了2,4,6-三氯苯酚(TCP)在多壁碳纳米管(MWCNTs)上的吸附平衡,以探索使用MWCNTs从受污染水中浓缩、检测和去除TCP的可能性。在pH值为4时,TCP在MWCNTs上的吸附是非线性、可逆的,并且最适合用Polanyi-Manes模型拟合。氧化处理增加了表面积,并在MWCNTs的缺陷位点引入了亲水性羧基,因此分别增加了TCP和Cu(II)的吸附。Cu(II)抑制了TCP在氧化MWCNTs15A上的吸附,但对原始生长的MWCNTs15影响很小。TCP对Cu(II)的吸附也没有影响。Cu(II)对TCP吸附的抑制作用机制归因于Cu(II)表面络合物的形成,这通过X射线吸收光谱得到了验证。Cu(II)对相邻碳管上的官能团发挥交联作用,形成更紧密的束状结构,并抑制TCP在碳管间孔隙中的凝聚。Cu(II)表面络合物周围的大水合球也可能侵入或屏蔽亲水位点,导致在Cu(II)络合位点周围“排挤”TCP。