论文标题

软水盐微晶

Floppy hydrated salt microcrystals

论文作者

Wijnhorst, Rozeline, Demmenie, Menno, Jambon-Puillet, Etienne, Ariese, Freek, Bonn, Daniel, Shahidzadeh, Noushine

论文摘要

由于其组成原子,离子或分子的高度有序组装而导致的矿物质结构赋予了对材料的相当硬度和脆性。结果,它们通常会骨折。在这里我们报告说,天然无机盐的微晶体(例如硫酸钠脱水酸钠)(NA2SO4.4.10H2O)和硫酸镁六水合物(MGSO4.6H2O)的行为可以非常不同:而不是在较柔软的方向或脆弱的方向上,而不是在柔软的方向上,而不是在较柔软的方向上,并且在柔软的方向上,并具有柔软的效果,并且是柔软的盐分,并且是柔软的,并且是柔软的盐水,并且是柔软的,并且是在较脆弱的方向上,并且是柔软的盐水。二线点。结果,水合晶体同时表现为晶体和液体样。我们表明,观察到的弹性是由于平衡形状的变形和微晶表面上的粘性流量引入的过量毛细能能量之间的权衡。此处报道的这种令人惊讶的,异常的机械性能揭示了晶体结构中存在的水分子的作用。尽管许多化合物可以在其晶体框架中掺入水分子,但不同的水合物与赤水晶体形式之间的关系仍未得到研究。我们对这种结晶结构的软盘行为的结果揭示了夹在晶体结构中的水分子的某些未开发的特性,并可以为它们在各种领域的应用开放新颖的路线,​​例如药物科学,热量储能,甚至在火星上的水的脱糖性。

The crystalline structure of minerals due to the highly ordered assembly of its constituent atoms, ions or molecules confers a considerable hardness and brittleness to the materials. As a result, they are generally subject to fracture. Here we report that microcrystals of natural inorganic salt hydrates such as sodium sulfate decahydrate (Na2SO4.10H2O) and magnesium sulfate hexahydrate (MgSO4.6H2O) can behave remarkably differently: instead of having a defined faceted geometrical shape and being hard or brittle, they lose their facets and become soft and deformable when in contact with their saturated salt solution at their deliquescence point. As a result, the hydrated crystals simultaneously behaves as crystalline and liquid-like. We show that the observed elasticity is a consequence of a trade-off between the excess capillary energy introduced by the deformation from the equilibrium shape and viscous flow over the surface of the microcrystals. This surprising, unusual mechanical properties reported here reveals the role of the water molecules present in the crystalline structure. Although many compounds can incorporate water molecules in their crystalline frameworks, the relationship between the different hydrates and anhydrate crystal forms are still poorly investigated. Our results on the floppy behaviour of such crystalline structure reveals some unexplored properties of water molecules entrapped in the crystalline structure and can open novel routes for their application in various fields such as pharmaceutical sciences, thermal energy storage and even the traceability of water on Mars.

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