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首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >To Distinguish Electrostatic, Coordination Bond, Nonclassical Polarization, and Dispersion Forces on Cation-Clay Interactions
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To Distinguish Electrostatic, Coordination Bond, Nonclassical Polarization, and Dispersion Forces on Cation-Clay Interactions

机译:区分静电,协调键,非生物偏振和分散力对阳离子 - 粘土相互作用

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Recent research has suggested that inorganic ions give rise to complex interfacial adsorption effects, but people do not fully understand the mechanisms at present. In this study, the interface adsorption energies of H+ (without extranuclear electron), Li+, and Cs+ (with extranuclear electrons but possessing a large difference in ionic radius) on montmorillonite surface were estimated to elucidate the contribution of electrostatic, coordination bond, nonclassical polarization, and dispersion forces to interface adsorption energies. The results showed that under given cationic concentrations, the equilibrium adsorption energies followed the sequence of Cs+ H+ Li+. Moreover, the adsorption energies of H+ (with minimum ion radius) were close to Cs+ (with largest ion radius) but much larger than that of Li+ under relative low cationic concentrations, whereas the adsorption energies of Cs+, H+, and Li+ approached each other under the highest cationic concentration of 0.1 mol L-1, although their ionic sizes are in great difference. With these results, we conclude the following: for Li+, the observed adsorption energy could be fully explained by the classic electrostatic force; for H+, the nonelectrostatic adsorption energy was from the coordinate bond between H+ and O atom at surface, and the coordinate bond adsorption energy of H+ was electric-field-dependent; for Cs+, under relative low electrolyte concentrations, the nonelectrostatic adsorption energy was from the nonclassic polarizability of Cs+, and under the high electrolyte concentration of 0.1 mol L-1, the nonelectrostatic adsorption energy was from the dispersion force of Cs+ and NO3- through ion pair adsorption.
机译:最近的研究表明,无机离子产生复杂的界面吸附作用,但人们不完全了解的机制目前。在这项研究中,H +(无核外电子)中,Li +,和Cs +的界面吸附能(与核外电子但具有在离子半径大的差异)蒙脱石表面上估计阐明静电,配位键,非经典偏振的贡献和分散力的接口吸附能。结果表明,下给出阳离子浓度时,平衡吸附能随后铯+ GT的序列; H +>李+。此外,H +的吸附能(以最小的离子半径)均接近CS +(具有最大离子半径),但是相对低的阳离子浓度下比的Li +的大得多,而CS +,H +和Li +的吸附能彼此靠近0.1摩尔L-1的最高浓度阳离子下,虽然它们的离子尺寸在很大的差别。有了这些结果,我们得出以下结论:对Li +,观察到的吸附能量可以完全由经典的静电力解释;为H +时,nonelectrostatic吸附能量为从H +,并在表面的O原子之间的配位键,坐标H +的键吸附能量电场依赖性;对于CS +,相对低的电解质浓度下,所述nonelectrostatic吸附能量为选自C +的非典型极化性,和0.1mol L-1的高电解质浓度下,所述nonelectrostatic吸附能量为从通过离子CS +和NO 3 - 的分散力一对吸附。

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