首页> 外文期刊>Acta crystallographica. Section F, Structural biology communications >Observing structural reorientations at solvent-nanoparticle interfaces by X-ray diffraction - putting water in the spotlight
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Observing structural reorientations at solvent-nanoparticle interfaces by X-ray diffraction - putting water in the spotlight

机译:观察X射线衍射溶剂纳米粒子界面的结构性重构 - 将水放入聚光灯下

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Nanoparticles are attractive in a wide range of research genres due to their size-dependent properties, which can be in contrast to those of micrometre-sized colloids or bulk materials. This may be attributed, in part, to their large surface-to-volume ratio and quantum confinement effects. There is a growing awareness that stress and strain at the particle surface contribute to their behaviour and this has been included in the structural models of nanoparticles for some time. One significant oversight in this field, however, has been the fact that the particle surface affects its surroundings in an equally important manner. It should be emphasized here that the surface areas involved are huge and, therefore, a significant proportion of solvent molecules are affected. Experimental evidence of this is emerging, where suitable techniques to probe the structural correlations of liquids at nanoparticle surfaces have only recently been developed. The recent validation of solvation shells around nanoparticles has been a significant milestone in advancing this concept. Restructured ordering of solvent molecules at the surfaces of nanoparticles has an influence on the entire panoply of solvent-particle interactions during, for example, particle formation and growth, adhesion forces in industrial filtration, and activities of nanoparticle-enzyme complexes. This article gives an overview of the advances made in solvent-nanoparticle interface research in recent years: from description of the structure of bulk solids and liquids via macroscopic planar surfaces, to the detection of nanoscopic restructuring effects. Water-nanoparticle interfaces are given specific attention to illustrate and highlight their similarity to biological systems.
机译:由于其依赖性特性,纳米颗粒在各种研究类型中具有吸引力,这与微米大小胶体或散装材料相反。这部分可以部分地归因于它们的大量比率比和量子限制效应。毫不发意的是,颗粒表面的应力和应变有助于它们的行为,并且这已包括在纳米颗粒的结构模型中一段时间​​。然而,这一领域的一个显着的监督已经是粒子表面以同样重要的方式影响其周围环境。这里应该强调的是,所涉及的表面区域是巨大的,因此,溶剂分子的显着比例是受影响的。其实验证据是出现的,在最近才开发出纳米颗粒表面下液体结构相关性的合适技术。最近纳米颗粒周围溶剂化壳的验证是推进这一概念的重要里程碑。在纳米颗粒表面处的溶剂分子的重组顺序对整个溶剂颗粒相互作用的整个胰溶剂相互作用的影响,产业过滤中的粘附力以及纳米粒子酶配合物的活性。本文概述了近年来溶剂纳米粒子界面研究的进展情况:通过宏观平面表面的散装固体和液体结构的描述,以检测纳米镜的重组效果。水纳米粒子界面被特别注意说明并突出与生物系统的相似性。

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