论文标题

功能化纳米颗粒的被动运输的计算建模

Computational modelling of passive transport of functionalized nanoparticles

论文作者

Moreno-Chaparro, Daniela, Moreno, Nicolas, Balboa-Usabiaga, Florencio, Ellero, Marco

论文摘要

功能化的纳米颗粒(NP)是各种系统中存在的复杂物体,从合成移植的纳米颗粒到病毒。在系统之间,装饰组的形态和数量可能会差异很大。因此,功能化NP的建模通常将简化的球形对象视为一阶近似。在纳米级标签上,随着颗粒的形态特征的变化,复杂的流体动力相互作用有望出现,当NP被限制或靠近壁时,它们可以进一步扩增。可以通过NP的扩散系数来推断这些变化的直接估计。但是,对系数的评估需要改进的NP形态表示,以重现简化的球形模型隐藏的重要特征。在这里,我们表征了使用刚性多企业(RMB)方法的自由和受限功能化纳米颗粒的被动传输。 RMB的主要优点是它的多功能性是以明显的准确性和降低的计算成本来近似纳米级复杂结构的迁移率。特别是,我们研究了官能团分布,大小和形态对纳米颗粒平移和旋转扩散的影响。我们确定官能团的存在显着影响纳米颗粒的旋转扩散,此外,与非功能化纳米颗粒相比,组的形态和数量会诱导特征迁移率降低。狭窄的NP还证明了其扩散率的重要变化,并在旋转扩散的非对角线贡献中具有独特的特征。这些结果可以在各种应用中被利用,包括生物医学,聚合物纳米复合材料制造,药物输送和成像

Functionalized nanoparticles (NPs) are complex objects present in a variety of systems ranging from synthetic grafted nanoparticles to viruses. The morphology and number of the decorating groups can vary widely between systems. Thus, the modelling of functionalized NPs typically considers simplified spherical objects as a first-order approximation. At the nanoscale label, complex hydrodynamic interactions are expected to emerge as the morphological features of the particles change, and they can be further amplified when the NPs are confined or near walls. Direct estimation of these variations can be inferred via diffusion coefficients of the NPs. However, the evaluation of the coefficients requires an improved representation of the NPs morphology to reproduce important features hidden by simplified spherical models. Here, we characterize the passive transport of free and confined functionalized nanoparticles using the Rigid Multi-Blob (RMB) method. The main advantage of RMB is its versatility to approximate the mobility of complex structures at the nanoscale with significant accuracy and reduced computational cost. In particular, we investigate the effect of functional groups distribution, size and morphology over nanoparticle translational and rotational diffusion. We identify that the presence of functional groups significantly affects the rotational diffusion of the nanoparticles, moreover, the morphology of the groups and number induce characteristic mobility reduction compared to non-functionalized nanoparticles. Confined NPs also evidenced important alterations in their diffusivity, with distinctive signatures in the off-diagonal contributions of the rotational diffusion. These results can be exploited in various applications, including biomedical, polymer nanocomposite fabrication, drug delivery, and imaging

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