Binding Modes and Water-Mediation of Polyelectrolyte Adsorption to a Neutral CaCO3 Surface

IF 3.9 2区 化学 Q2 CHEMISTRY, MULTIDISCIPLINARY Langmuir Pub Date : 2024-12-02 DOI:10.1021/acs.langmuir.4c03301
Alec Glisman, Sriteja Mantha, Decai Yu, Eric Paul Wasserman, Scott Backer, Larisa Reyes, Zhen-Gang Wang
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Abstract

Aqueous polyelectrolytes are effective mineralization inhibitors due to their ability to template onto crystal surfaces and chelate ions in solution. These additives have been shown to alter the morphology of calcium carbonate crystals, making them promising candidates for biological and industrial applications. However, while key to designing more effective mineralization inhibitors, the molecular mechanisms governing the interactions between polyelectrolytes and crystal surfaces remain poorly understood. In this study, we investigate the adsorption of poly(acrylic acid) (PAA) on the dominant calcite (101̅4)(101̅4) cleavage plane using all-atom molecular dynamics simulations. Although the calcite slab is electrostatically neutral, its charge distribution induces a strong electrostatic potential in an aqueous solution, which leads to significant water structuring at the interface. We observe a very favorable adsorption affinity of the polyelectrolyte chain to the surface, yet the structure of the interfacial water is not significantly affected. Direct interactions between the monomers on the polyelectrolyte and the calcite surface are infrequent, despite variations in chain length, charge density of the polyelectrolyte, and solution conditions. Intriguingly, the polyelectrolyte interaction with the calcite surface is dominantly mediated through bridging hydrogen bond interactions. As the polyelectrolyte adsorbs to the surface, the chain conformation adapts to the interfacial water structure by increasing polyelectrolyte–water contacts and integrates into pre-existing hydrogen bond networks. We found that water-mediated interactions are more dominant than direct interactions between the polyelectrolyte and the surface. This suggests an alternative pathway to the widely accepted notion that entropic effects due to water reorganization are the primary driving force. These results suggest that the polyelectrolyte binding affinity can be tuned by altering the polymer chain interactions with the interfacial water structure in addition to the surface itself.

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中性CaCO3表面上聚电解质吸附的结合模式和水介质
水聚电解质是有效的矿化抑制剂,因为它们能够模板到晶体表面和螯合离子在溶液中。这些添加剂已被证明可以改变碳酸钙晶体的形态,使其成为生物和工业应用的有希望的候选者。然而,尽管设计更有效的矿化抑制剂的关键是,控制聚电解质和晶体表面之间相互作用的分子机制仍然知之甚少。在这项研究中,我们用全原子分子动力学模拟研究了聚丙烯酸(PAA)在方解石(101 _4)(101 _4)(101 _4)(101 _4)解理面上的吸附。虽然方解石板是静电中性的,但其电荷分布在水溶液中引起了很强的静电电位,从而导致界面处明显的水结构。我们观察到聚电解质链对表面具有非常有利的吸附亲和性,但界面水的结构没有受到明显影响。尽管聚电解质的链长、电荷密度和溶液条件不同,但聚电解质和方解石表面的单体之间的直接相互作用很少。有趣的是,多电解质与方解石表面的相互作用主要是通过桥接氢键相互作用介导的。当聚电解质吸附到表面时,链的构象通过增加聚电解质-水的接触来适应界面水结构,并融入到已有的氢键网络中。我们发现,水介导的相互作用比聚电解质与表面之间的直接相互作用更占优势。这为广泛接受的概念提供了另一种途径,即由水重组引起的熵效应是主要驱动力。这些结果表明,通过改变聚合物链与界面水结构的相互作用,可以调节聚电解质的结合亲和力。
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来源期刊
Langmuir
Langmuir 化学-材料科学:综合
CiteScore
6.50
自引率
10.30%
发文量
1464
审稿时长
2.1 months
期刊介绍: Langmuir is an interdisciplinary journal publishing articles in the following subject categories: Colloids: surfactants and self-assembly, dispersions, emulsions, foams Interfaces: adsorption, reactions, films, forces Biological Interfaces: biocolloids, biomolecular and biomimetic materials Materials: nano- and mesostructured materials, polymers, gels, liquid crystals Electrochemistry: interfacial charge transfer, charge transport, electrocatalysis, electrokinetic phenomena, bioelectrochemistry Devices and Applications: sensors, fluidics, patterning, catalysis, photonic crystals However, when high-impact, original work is submitted that does not fit within the above categories, decisions to accept or decline such papers will be based on one criteria: What Would Irving Do? Langmuir ranks #2 in citations out of 136 journals in the category of Physical Chemistry with 113,157 total citations. The journal received an Impact Factor of 4.384*. This journal is also indexed in the categories of Materials Science (ranked #1) and Multidisciplinary Chemistry (ranked #5).
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