Center for Condensed Matter Theory, Department of Physics, Indian Institute of Science, Bangalore - 560012, India.
Soft Matter. 2018 Mar 7;14(10):1925-1938. doi: 10.1039/c8sm00179k.
The adsorption of PAMAM dendrimers at solid/water interfaces has been extensively studied, and is mainly driven by electrostatic and van der Waals interactions between the substrate and the dendrimers. However, the pH dependence of the adsorption driven predominantly by the van der Waals interactions is poorly explored, although it is crucial for investigating the potentiality of these dendrimers in supercapacitors and surface patterning. Motivated by this aspect, we have studied the adsorption behavior of PAMAM dendrimers of generations 2 (G2) to 5 (G5) with pH and salt concentration variation, on a charge neutral graphene substrate, using fully atomistic molecular dynamics simulations. The instantaneous snapshots from our simulations illustrate that the dendrimers deform significantly from their bulk structures. Based on various structural property calculations, we classify the adsorbed dendrimer morphologies into five categories and map them to a phase diagram. Interestingly, the morphologies we report here have striking analogies with those reported in star-polymer adsorption studies. From the fractional contacts and other structural property analyses we find that the deformations are more pronounced at neutral pH as compared to high and low pH. Higher generation dendrimers resist deformation following the deformation trend, G2 > G3 > G4 > G5 at any given pH level. As the adsorption here is mainly driven by van der Waals interactions, we observe no desorption of the dendrimers as the salt molarity is increased, unlike that reported in the electrostatically driven adsorption studies.
聚酰胺-胺树枝状大分子(PAMAM dendrimers)在固/水界面的吸附已得到广泛研究,主要由基质与树枝状大分子之间的静电和范德华相互作用驱动。然而,由范德华相互作用主导的吸附的 pH 依赖性尚未得到充分探究,尽管这对于研究这些树枝状大分子在超级电容器和表面图案化中的潜力至关重要。出于这一方面的考虑,我们使用全原子分子动力学模拟,研究了在带电荷的石墨烯基质上,pH 值和盐浓度变化对第 2 代(G2)至第 5 代(G5)PAMAM 树枝状大分子的吸附行为。从我们的模拟中得到的瞬时快照表明,树枝状大分子从其本体结构显著变形。基于各种结构性质计算,我们将吸附的树枝状大分子形态分为五类,并将其映射到相图上。有趣的是,我们在这里报告的形态与在星形聚合物吸附研究中报告的形态有惊人的相似之处。从分数接触和其他结构性质分析中,我们发现与高 pH 和低 pH 相比,中性 pH 下的变形更为明显。在任何给定的 pH 水平下,较高代的树枝状大分子(G2 > G3 > G4 > G5)的变形趋势更为明显。由于此处的吸附主要由范德华相互作用驱动,我们观察到随着盐摩尔浓度的增加,树枝状大分子没有解吸,这与静电驱动吸附研究中报告的情况不同。