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中空球形颗粒与集尘表面之间的 DLVO 相互作用能。

DLVO Interaction Energies between Hollow Spherical Particles and Collector Surfaces.

机构信息

Department of Soil and Water Sciences, China Agricultural University , Beijing 100193, China.

U.S. Salinity Laboratory USDA, ARS, Riverside, California 92507-4617, United States.

出版信息

Langmuir. 2017 Oct 10;33(40):10455-10467. doi: 10.1021/acs.langmuir.7b02383. Epub 2017 Sep 29.

Abstract

The surface element integration technique was used to systematically study Derjaguin-Landau-Verwey-Overbeek (DLVO) interaction energies/forces between hollow spherical particles (HPs) and a planar surface or two intercepting half planes under different ionic strength conditions. The inner and outer spheres of HPs were concentric (CHP) or in point contact (PHP). In comparison to a solid particle, the attractive van der Waals interaction was reduced with increasing inner radius of the CHP, but the reduction effect was less significant for the CHP at smaller separation distance. Increasing the inner radius for CHP therefore reduced the depths of the secondary minima, but had minor influence on the energy barrier heights and depths of the primary minima. Consequently, increasing inner radius reduced the potential for CHP retention in secondary minima, whereas did not influence the retention in primary minima. For PHP these interaction energy parameters and colloid retention depended on the orientation of the inner sphere relative to interacting surface. In particular, the van der Waals attraction was significantly reduced at all separation distances when the inner sphere was closest to the interacting surface, and this diminished retention in both secondary and primary minima. The PHP retention was similar to that of CHP when the inner sphere was farthest from the interaction surface. These orientation dependent interaction energies/forces resulted in directional bonds between PHPs and the formation of aggregates with contact points of the primary PHPs facing outward. The findings in this study have important implications for the design and utilization of HPs in soil remediation and colloid assembly.

摘要

采用表面元素积分技术,在不同离子强度条件下,系统研究了空心球形粒子(HPs)与平面或两个相交半平面之间的德加古因-朗道-范德瓦尔斯-奥弗贝克(DLVO)相互作用能/力。HPs 的内外球是同心的(CHP)或点接触的(PHP)。与实心颗粒相比,随着 CHP 内半径的增大,范德华吸引力减小,但在较小分离距离下,CHP 的减小效果不明显。因此,增加 CHP 的内半径会降低次级最小势能的深度,但对初级最小势能的能垒高度和深度影响较小。因此,增加内半径会降低 CHP 在次级最小势能中保留的可能性,而不会影响初级最小势能中的保留。对于 PHP,这些相互作用能参数和胶体保留取决于内球相对于相互作用表面的取向。特别是,当内球最接近相互作用表面时,范德华吸引力在所有分离距离上都显著降低,这会降低次级和初级最小势能中的保留。当内球离相互作用表面最远时,PHP 的保留与 CHP 相似。这些与取向相关的相互作用能/力导致了 PHP 之间的定向键合,并形成了具有初级 PHP 的接触点向外的聚集体。本研究的发现对空心球在土壤修复和胶体组装中的设计和应用具有重要意义。

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