Montavon G, Bouby M, Huclier-Markai S, Grambow B, Geckeis H, Rabung T, Pashalidis I, Amekraz B, Moulin C
Laboratoire SUBATECH, UMR Ecole des Mines/In2P3/CNRS/Université de Nantes, 4 rue A. Kastler, BP 20722, 44307 Nantes cedex 03, France.
J Colloid Interface Sci. 2008 Nov 15;327(2):324-32. doi: 10.1016/j.jcis.2008.08.037. Epub 2008 Aug 23.
The trivalent metal ion (M(III)=Cm, Eu)/polyacrylic acid (PAA) system was studied in the pH range between 3 and 5.5 for a molar PAA-to-metal ratio above 1. The interaction was studied for a wide range of PAA (0.05 mg L(-1)-50 g L(-1)) and metal ion concentrations (2x10(-9)-10(-3) M). This work aimed at 3 goals (i) to determine the stoichiometry of M(III)-PAA complexes, (ii) to determine the number of complexed species and the local environment of the metal ion, and (iii) to quantify the reaction processes. Asymmetric flow-field-flow fractionation (AsFlFFF) coupled to ICP-MS evidenced that size distributions of Eu-PAA complexes and PAA were identical, suggesting that Eu bound to only one PAA chain. Time-resolved laser fluorescence spectroscopy (TRLFS) measurements performed with Eu and Cm showed a continuous shift of the spectra with increasing pH. The environment of complexed metal ions obviously changes with pH. Most probably, spectral variations arose from conformational changes within the M(III)-PAA complex due to pH variation. Complexation data describing the distribution of complexed and free metal ion were measured with Cm by TRLFS. They could be quantitatively described in the whole pH-range studied by considering the existence of only a single complexed species. This indicates that the slight changes in M(III) speciation with pH observed at the molecular level do not significantly affect the intrinsic binding constant. The interaction constant obtained from the modelling must be considered as a mean interaction constant.
研究了三价金属离子(M(III)=Cm、Eu)/聚丙烯酸(PAA)体系在pH值为3至5.5且PAA与金属的摩尔比大于1的范围内的情况。研究了广泛的PAA(0.05 mg L⁻¹ - 50 g L⁻¹)和金属离子浓度(2×10⁻⁹ - 10⁻³ M)下的相互作用。这项工作旨在实现三个目标:(i)确定M(III)-PAA配合物的化学计量;(ii)确定配合物种类的数量和金属离子的局部环境;(iii)量化反应过程。与ICP-MS联用的不对称流场流分级法(AsFlFFF)表明,Eu-PAA配合物和PAA的尺寸分布相同,这表明Eu仅与一条PAA链结合。用Eu和Cm进行的时间分辨激光荧光光谱(TRLFS)测量表明,随着pH值升高,光谱持续发生位移。配合金属离子的环境显然随pH值变化。光谱变化很可能是由于pH值变化导致M(III)-PAA配合物内部构象变化引起的。用TRLFS测量了描述配合态和游离金属离子分布的络合数据。通过考虑仅存在单一配合物种类,可以在整个研究的pH范围内对其进行定量描述。这表明在分子水平上观察到的M(III)形态随pH值的轻微变化不会显著影响固有结合常数。从建模中获得的相互作用常数必须被视为平均相互作用常数。