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Design of Optimally Stable Molecular Coatings forFe-Based Nanoparticles in Aqueous Environments

机译:最佳稳定分子涂层的设计。水性环境中的铁基纳米颗粒

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摘要

Magnetic nanoparticles are widely used in biomedical and oil-well applications in aqueous, often harsh environments. The pursuit for high-saturation magnetization together with high stability of the molecular coating that prevents agglomeration and oxidation remains an active research area. Here, we report a detailed analysis of the criteria for the stability of molecular coatings in aqueous environments along with extensive first-principles calculations for magnetite, which has been widely used, and cementite, a promising emerging candidate. A key result is that the simple binding energies of molecules cannot be used as a definitive indicator of relative stability in a liquid environment. Instead, we find that H+ ions and water molecules facilitate the desorption of molecules from the surface. We further find that, because of differences in the geometry of crystal structures, molecules generally form stronger bonds on cementite surfaces than they do on magnetite surfaces. The net result is that molecular coatings of cementite nanoparticles are more stable. This feature, togetherwith the better magnetic properties, makes cementite nanoparticlesa promising candidate for biomedical and oil-well applications.
机译:磁性纳米粒子广泛用于水性,通常是恶劣环境中的生物医学和油井应用。追求高饱和磁化强度以及防止团聚和氧化的分子涂层的高稳定性仍然是活跃的研究领域。在这里,我们报告了对分子涂层在水性环境中稳定性的标准的详细分析,以及广泛使用的磁铁矿和渗碳体的广泛的第一性原理计算,渗碳体是一种有前途的新兴候选人。关键结果是分子的简单结合能不能用作液体环境中相对稳定性的确定指标。相反,我们发现H + 离子和水分子有助于分子从表面解吸。我们进一步发现,由于晶体结构的几何形状不同,分子通常在渗碳体表面上形成比在磁铁矿表面上形成更牢固的结合。最终结果是渗碳体纳米颗粒的分子涂层更稳定。此功能结合在一起具有更好的磁性能,使渗碳体纳米颗粒生物医学和油井应用的有希望的候选人。

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