The Impact of Polyphosphates on the Colloidal Stability of Laponite Particles

IF 2.8 2区 化学 Q3 CHEMISTRY, PHYSICAL The Journal of Physical Chemistry B Pub Date : 2024-07-09 DOI:10.1021/acs.jpcb.4c03193
Bojana Katana, João Baptista, Ricardo Schneider, Rodrigo José de Oliveira* and István Szilágyi*, 
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Abstract

The effect of polyphosphate (polyP) adsorption on the colloidal properties of disc-shaped laponite (LRD) particles was examined in aqueous dispersions with a focus on elucidating the interparticle forces that govern the colloidal stability of the systems. The charge and aggregation rate data of bare LRD exhibited an ionic strength-dependent trend, confirming the presence of double-layer repulsion and van der Waals attraction as major surface interactions. The charge of LRD particles significantly increased in magnitude at elevated polyP concentrations as a result of polyP adsorption and subsequent overcharging of the positively charged sites on the edges of the LRD discs. A transition from stable to unstable LRD colloids was observed with increasing polyP doses indicating the formation of aggregates in the latter systems due to depletion forces and/or bridging interactions induced by dissolved or adsorbed polyP, respectively. The degree of phosphate polymerization influenced neither the charge nor the aggregation mechanism. The findings clearly confirm that polyP adsorption was the driving phenomenon to induce particle aggregation in contrast to other clay types, where phosphate derivatives act as dispersion stabilizing agents. This study provides valuable insights into the early stages of aggregation in colloidal systems involving LRD and polyPs, which have a crucial role in predicting further material properties that are important to designing LRD-polyP composites for applications such as potential phosphate sources in chemical fertilizers.

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聚磷酸盐对皂石颗粒胶体稳定性的影响
在水分散液中研究了聚磷酸盐(polyP)吸附对圆盘形青金石(LRD)颗粒胶体特性的影响,重点是阐明支配系统胶体稳定性的颗粒间作用力。裸 LRD 的电荷和聚集率数据呈现出与离子强度相关的趋势,证实了双层斥力和范德华吸引是主要的表面相互作用。在聚磷酸酯浓度升高的情况下,由于聚磷酸酯的吸附作用以及随后对 LRD 圆盘边缘的正电荷位点的过充电,LRD 粒子的电荷量显著增加。随着聚磷酸酯剂量的增加,可观察到 LRD 胶体从稳定到不稳定的转变,这表明在后一种体系中,由于溶解或吸附的聚磷酸酯分别诱导的耗竭力和/或架桥相互作用,形成了聚集体。磷酸盐聚合度既不影响电荷,也不影响聚集机制。研究结果清楚地证实,聚磷酸酯吸附是诱导颗粒聚集的驱动现象,这与磷酸盐衍生物作为分散稳定剂的其他粘土类型截然不同。这项研究为了解涉及 LRD 和聚磷酸盐的胶体系统的早期聚集阶段提供了宝贵的见解,这对于预测进一步的材料特性至关重要,而这些特性对于设计 LRD 聚磷酸盐复合材料的应用(如化肥中潜在的磷酸盐来源)非常重要。
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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.
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