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Evidence of the existence of the low-density liquid phase in supercooled, confined water

机译:过冷,密闭水中存在低密度液相的证据

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By confining water in a nanoporous structure so narrow that the liquid could not freeze, it is possible to study properties of this previously undescribed system well below its homogeneous nucleation temperature T-H = 231 K. Using this trick, we were able to study, by means of a Fourier transform infrared spectroscopy, vibrational spectra (HOH bending and OH-stretching modes) of deeply supercooled water in the temperature range 183 < T < 273 K. We observed, upon decreasing temperature, the building up of a new population of hydrogen-bonded oscillators centered around 3,120 cm(-1), the contribution of which progressively dominates the spectra as one enters into the deeply supercooled regime. We determined that the fractional weight of this spectral component reaches 50% just at the temperature, T-L approximate to 225 K, where the confined water shows a fragile-to-strong dynamic cross-over phenomenon [Ito, K., Moynihan, C. T., Angell, C. A. (1999) Nature 398:492-494]. Furthermore, the fact that the corresponding OH stretching spectral peak position of the low-density-amorphous solid water occurs exactly at 3,120 cm(-1) [Sivakumar, T. C., Rice, S. A., Sceats, M. G. (1978) J. Chem. Phys. 69:3468-3476.] strongly suggests that these oscillators originate from existence of the low-density-liquid phase derived from the occurrence of the first-order liquid-liquid (ILL) phase transition and the associated LL critical point in supercooled water proposed earlier by a computer molecular dynamics simulation
机译:通过将水限制在一个纳米孔结构中以至于液体无法冻结,就可以研究此先前未描述的系统的性能,该系统的温度远低于其均匀成核温度TH = 231K。使用此技巧,我们能够通过以下方式进行研究傅里叶变换红外光谱的研究,研究了温度范围为183

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