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MgO nanocube hydroxylation by nanometric water films

机译:纳米水膜MgO纳米立方体羟基化

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Hydrophilic nanosized minerals exposed to air moisture host thin water films that are key drivers of reactions of interest in nature and technology. Water films can trigger irreversible mineralogical transformations, and control chemical fluxes across networks of aggregated nanomaterials. Using X-ray diffraction, vibrational spectroscopy, electron microscopy, and (micro)gravimetry, we tracked water film-driven transformations of periclase (MgO) nanocubes to brucite (Mg(OH)2) nanosheets. We show that three monolayer- thick water films first triggered the nucleation-limited growth of brucite, and that water film loadings continuously increased as newly-formed brucite nanosheets captured air moisture. Small (8 nm-wide) nanocubes were completely converted to brucite under this regime while growth on larger (32 nm-wide) nanocubes transitioned to a diffusion-limited regime when (-0.9 nm-thick) brucite nanocoatings began hampering the flux of reactive species. We also show that intra- and inter-particle microporosity hosted a hydration network that sustained GPa-level crystallization pressures, compressing interlayer brucite spacing during growth. This was prevalent in aggregated 8 nm wide nanocubes, which formed a mazelike network of slit-shaped pores. By resolving the impact of nanocube size and microporosity on reaction yields and crystallization pressures, this work provides new insight into the study of mineralogical transformations induced by nanometric water films. Our findings can be applied to structurally related minerals important to nature and technology, as well as to advance ideas on crystal growth under nanoconfinement.
机译:亲水纳米矿物暴露在空气中水分主机薄水膜是关键自然和司机的反应感兴趣技术。矿物学的转换,和控制在网络聚合化学通量纳米材料。振动光谱、电子显微镜、(微)重力测量,我们找到水film-driven转换的方镁石(分别)nanocubes水镁石(毫克(OH) 2) nanosheets。显示三个单层厚的水膜首先触发nucleation-limited增长水镁石,水膜力不断增加新水镁石nanosheets捕获空气湿度。nanocubes完全转化为纳米宽)在这种制度下,水镁石而增长更大(32 nm宽)nanocubes转换到一个扩散限制的政权时(-0.9 nm厚的)水镁石nanocoatings开始阻碍的通量活性物种。inter-particle显微疏松主持水化网络,持续GPa-level结晶压力,压缩夹层水镁石间距在增长。nm宽nanocubes,形成一个mazelike网络slit-shaped毛孔。nanocube大小和微孔率的影响反应收益率和结晶压力,这项工作的研究提供了新的见解矿物引起的转换nanometric水电影。应用于结构相关的矿物重要的性质和技术,以及推进思想在晶体生长nanoconfinement。

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