平面几何大离子装配的反离子释放。

IF 2.8 2区 化学 Q3 CHEMISTRY, PHYSICAL The Journal of Physical Chemistry B Pub Date : 2024-07-03 DOI:10.1021/acs.jpcb.4c03222
Guilherme Volpe Bossa, Erik Hobbie, Sylvio May
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引用次数: 0

摘要

纳米粒子、聚电解质、离子凝胶和两亲化合物等大离子可以形成嵌入溶剂区的凝聚相,通常是自组装相。凝聚相不仅包含其大离子的部分或完全不动电荷,还包含相应的反离子,这些反离子具有流动性,因此可以从其封闭区自由迁移到溶剂区,并从高平移熵中获益。基于单价离子的非线性泊松-波尔兹曼模型,我们对大离子相的平面板几何形状中释放的反离子的相应部分进行了量化。板的厚度、溶剂相的延伸、大离子提供的固定背景电荷密度以及板和溶剂内部的介电常数组合成三个无量纲参数,释放出的反离子分数取决于这三个参数。我们计算了这一分数,并分析了薄大离子相、大溶剂相和线性化理论的极限,在这些极限下可以得到简单的分析结果。特别值得关注的是存在一个单平面界面,它将大量大离子相与扩展的溶剂区域分隔开。我们计算了由于释放的反离子而产生的表观表面电荷密度。我们的模型全面地描述了在没有添加盐离子的情况下,平面大离子相与溶剂区域之间在均场静电水平上的反离子分配情况。
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Counterion Release from Macroion Assemblies of Planar Geometry.

Macroions such as nanoparticles, polyelectrolytes, ionic gels, and amphiphiles can form condensed, often self-assembled, phases that are embedded in a solvent region. The condensed phase contains not only the partially or fully immobile charges of their macroions but also corresponding counterions that are mobile and thus free to migrate out of their confinement into the solvent region where they benefit from high translational entropy. Based on the nonlinear Poisson-Boltzmann model for monovalent ions, we quantify the corresponding fraction of released counterions for a planar slab geometry of the macroion phase. Slab thickness, extension of the solvent phase, fixed background charge density provided by the macroions, and dielectric constants inside slab and solvent combine into three dimensionless parameters that the fraction of released counterions depends on. We calculate that fraction and analyze the limits of a thin macroion phase, a large solvent phase, and linearized theory, where simple analytic results become available. Of particular interest is the presence of a single-planar interface that separates a bulk macroion phase from an extended solvent region. We calculate the apparent surface charge density that emerges due to the released counterions. Our model yields a comprehensive description of counterion partitioning between a planar macroion phase and a solvent region on the level of mean-field electrostatics in the absence of added salt ions.

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来源期刊
CiteScore
5.80
自引率
9.10%
发文量
965
审稿时长
1.6 months
期刊介绍: An essential criterion for acceptance of research articles in the journal is that they provide new physical insight. Please refer to the New Physical Insights virtual issue on what constitutes new physical insight. Manuscripts that are essentially reporting data or applications of data are, in general, not suitable for publication in JPC B.
期刊最新文献
A Joint Experimental and Theoretical Study on the Structural and Spectroscopic Properties of the Piv-Pro-d-Ser-NHMe Peptide. Optimizing Force Fields with Experimental Data Using Ensemble Reweighting and Potential Contrasting. Issue Publication Information Issue Editorial Masthead Counterion Release from Macroion Assemblies of Planar Geometry.
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