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Glass transition of LiCl aqueous solutions confined in mesoporous silica

机译:LiCl含水溶液局限于中孔二氧化硅的玻璃转变

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The thermal transitions of confined LiCl aqueous solutions were studied by differential scanning calorimetry for solutions with salt concentrations with eutectic (R = 7) and subeutectic (R > 7) compositions (R = moles of water/moles of LiCl). The confinement media consist of mesoporous silica with pore diameters between 2 nm and 58 nm, with a small negative surface charge density. The vitrification of confined LiCl aqueous solutions was observed in all samples, expanding the vitrification region up to R = 15, and probably beyond for cooling rates of approximate to 1000 K/min. Ice crystallization was observed in some samples, except for those confined in the narrower pores. The onset and endpoint glass transition temperatures for the confined eutectic samples increase by 2 K and 5 K, respectively, for the smallest pore diameters (2 nm), which is equivalent to the effect of applying a pressure of up to 100 MPa to the bulk sample. This behavior is opposite of that reported for aqueous subeutectic NaCl solutions confined in silica glasses of similar sizes. We speculate that this is due to the fact that the mechanism of double confinement of the NaCl solution, between the pore wall and the precipitated ice, is not operative for LiCl solutions. Instead, the Li+ ions might force the hydration water in to a high-density state. Published under license by AIP Publishing.
机译:通过差示扫描量热法研究了密闭LiCl水溶液的热转变,用于用共晶(R = 7)和亚太胶(R> 7)组合物(R = LiCL的水/摩尔摩尔/摩尔摩尔钼)的溶液。限制介质由介孔二氧化硅组成,其中孔径在2nm和58nm之间,具有小的负面电荷密度。在所有样品中观察到狭窄的LICL水溶液的玻璃化,将玻璃化区域膨胀至r = 15,并且可能超出近似为1000k / min的冷却速率。在一些样品中观察到冰结晶,除了狭窄的毛孔中的那些。对于最小的孔径(2nm),狭窄的共晶样品的开始和终点玻璃化转变温度分别增加2k和5 k,这相当于施加高达100MPa至散装的效果样本。这种行为与报道的含水亚太晶体NaCl溶液局限于类似尺寸的硅胶溶液相反。我们推测这是由于孔隙壁和沉淀的冰之间的NaCl溶液之间的双重限制的机制不用于LiCl溶液。相反,Li +离子可能迫使水合水进入高密度状态。通过AIP发布在许可证下发布。

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