THE INTERATOMIC STRUCTURE OF WATER AT SUPERCRITICAL TEMPERATURES

被引:249
作者
POSTORINO, P
TROMP, RH
RICCI, MA
SOPER, AK
NEILSON, GW
机构
[1] UNIV BRISTOL,HH WILLS PHYS LAB,TYNDALL AVE,BRISTOL BS8 1TL,AVON,ENGLAND
[2] UNIV ROMA 3,DIPARTIMENTO FIS E AMALDI,I-00154 ROME,ITALY
[3] UNIV ROMA LA SAPIENZA,DIPARTIMENTO FIS,I-00185 ROME,ITALY
[4] RUTHERFORD APPLETON LAB,DIV NEUTRON,DIDCOT OX11 0QX,OXON,ENGLAND
关键词
D O I
10.1038/366668a0
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
LIQUID water, the medium in which life both began and persists, is in many ways a most unusual fluid. Much is known about the macroscopic properties of the condensed and gaseous states of water, but our understanding of the microscopic forces that define water structure remains incomplete1. This structure, described in terms of correlations between the pairs of atoms O-H, O-O and H-H (ref. 2), can be studied by neutron diffraction techniques involving isotopic substitution3. In particular, the signature of hydrogen bonding is apparent in neutron diffraction experiments as a peak in the pair correlation function of O and H (g(OH)(r)) at about 1.9 angstrom (refs 3, 4). Here we extend such studies into the supercritical regime of water, in which there is no longer any distinction between the liquid and vapour phases. We find that at the supercritical temperature of 400-degrees-C almost all hydrogen bonding is broken down, even though the thermal energy k(B)T is considerably less than the energy of the hydrogen bond. Our results are markedly different from the predictions of computer simulations under comparable conditions5 using a common model of water5-7. Our results provide a sensitive test of models of water structure more generally, and give some indication of the environment that solute molecules will experience in extraction and reaction processes that employ supercritical water as a solvent8.
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收藏
页码:668 / 670
页数:3
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