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通过设计自组装单分子层涂层来控制水介导的相互作用。

Controlling water-mediated interactions by designing self-assembled monolayer coatings.

机构信息

Aramco Services Company: Aramco Research Center-Boston, 400 Technology Square, Cambridge, MA, 02139, USA.

出版信息

Sci Rep. 2021 Apr 19;11(1):8459. doi: 10.1038/s41598-021-87708-8.

Abstract

Engineered nanoparticles have been broadly used in biological and geological systems. Hydrophilic molecules such as polyols have been used as coatings on nanoparticle surfaces due to their good biocompatibility and solubility in saline water. However, polyol coatings can cause huge retention of nanoparticles when encountering mineral surfaces. Here, molecular dynamics simulations enlightened that the strong adhesion of hydrophilic coatings to mineral surfaces stemming from the partitioning of the hydroxy groups on the hydrophilic molecules to the well-defined bound hydration layers on the mineral surfaces. To mitigate the nanoparticle adhesion, we investigated introducing small percentages of omniphobic fluoroalkanes to form a bicomponent system of hydrophilic and fluoroalkanes, which greatly perturbed the hydration layers on mineral surfaces and resulted in nonstick surface coatings. Our results provide important insight for the design of tunable "stickiness" nanoparticle coatings in different mineralogies, such as applications in subsurface environments or targeted delivery in mineralized tissues.

摘要

工程纳米粒子已广泛应用于生物和地质系统。由于其良好的生物相容性和在盐水中的溶解度,亲水分子如多元醇被用作纳米粒子表面的涂层。然而,多元醇涂层在遇到矿物表面时会导致纳米粒子大量滞留。在这里,分子动力学模拟表明,亲水分子涂层与矿物表面的强烈粘附是由于亲水分子上的羟基基团在矿物表面上的限定结合水合层上的分配。为了减轻纳米粒子的粘附,我们研究了引入少量全氟烷烃形成亲水性和全氟烷烃的双组分体系,这极大地干扰了矿物表面上的水合层,并导致非粘性表面涂层。我们的研究结果为设计不同矿物学中可调“粘性”纳米粒子涂层提供了重要的见解,例如在地下环境中的应用或在矿化组织中的靶向输送。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4a3d/8055914/ef6b5a669085/41598_2021_87708_Fig1_HTML.jpg

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