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首页> 外文期刊>Journal of Physics. Condensed Matter >Quasielastic and inelastic neutron scattering investigation of fragile-to-strong crossover in deeply supercooled water confined in nanoporous silica matrices
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Quasielastic and inelastic neutron scattering investigation of fragile-to-strong crossover in deeply supercooled water confined in nanoporous silica matrices

机译:纳米多孔二氧化硅基体中深度过冷水中脆弱至强相交的准弹性和非弹性中子散射研究

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摘要

We investigated, using quasi-elastic and inelastic neutron scattering, the slow single-particle dynamics of water confined in laboratory synthesized nanoporous silica matrices, MCM-41-S, with pore diameters ranging from 10 to 18 angstrom. Inside the pores of these matrices, the freezing process of water is strongly inhibited down to 160 K. We analysed the quasi-elastic part of the neutron scattering spectra with a relaxing-cage model and determined the temperature and pressure dependence of the Q-dependent translational relaxation time and its stretch exponent beta for the time dependence of the self- intermediate scattering function. The calculated Q-independent average translational relaxation time shows a fragile-to-strong (FS) dynamic crossover for pressures lower than 1600 bar. Above this pressure, it is no longer possible to discern the characteristic feature of the FS crossover. Identification of this end point with the predicted second low-temperature critical point of water is discussed. A subsequent inelastic neutron scattering investigation of the librational band of water indicates that this FS dynamic crossover is associated with a structural change of the hydrogen-bond cage surrounding a typical water molecule from a denser liquid-like configuration to a less-dense ice-like open structure.
机译:我们使用准弹性和非弹性中子散射,研究了在实验室合成的纳米多孔二氧化硅基质MCM-41-S中,水的单粒子动力学缓慢,其孔径范围为10至18埃。在这些基质的孔内部,水的冻结过程在160 K以下都受到强烈抑制。我们使用弛豫笼模型分析了中子散射光谱的准弹性部分,并确定了Q依赖的温度和压力依赖性平移弛豫时间及其拉伸指数β与自中间散射函数的时间相关。计算得出的独立于Q的平均平移弛豫时间显示了在压力低于1600 bar时,脆弱到强烈(FS)的动态转换。超过此压力,就不再可能识别FS跨界车的特征。讨论了用预测的水第二低温临界点确定该终点的方法。随后对水的自由带进行的非弹性中子散射研究表明,这种FS动态交叉与围绕典型水分子的氢键笼的结构变化有关,该结构由较密的液体状变为较不密集的冰状开放的结构。

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