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200GPa 以上高温氢的拉曼光谱。

Raman spectroscopy of hot hydrogen above 200 GPa.

机构信息

School of Physics and Centre for Science at Extreme Conditions, University of Edinburgh, Edinburgh EH9 3JZ, UK.

出版信息

Nat Mater. 2015 May;14(5):495-9. doi: 10.1038/nmat4213. Epub 2015 Feb 23.

Abstract

It has been theorized that at high pressure the increased energy of the zero-point oscillations in hydrogen would destabilize the lattice and form a ground fluid state at 0 K (ref. 1). Theory has also suggested that this fluid state, representing a new state of matter, might have unusual properties governed by quantum effects, such as superfluidity or superconductivity. Here, by combining Raman spectroscopy and in situ high-temperature, high-pressure techniques, we demonstrate that above 200 GPa a new phase transition occurs as temperature is increased, for example 480 K at 255 GPa. If the transformation is interpreted as melting, it would be the lowest melting temperature of any material at these high pressures. We also find a new triple point between phases I and IV and the new phase, and demonstrate that hydrogen retains its molecular character around this point. These data may require a significant revision of the phase diagram of hydrogen above 200 GPa.

摘要

有人推测,在高压下,氢的零点振动的能量增加会使晶格失稳,并在 0 K 时形成基态流体状态(参考文献 1)。理论还表明,这种流体状态代表了一种新的物质状态,可能具有由量子效应支配的异常性质,例如超流或超导。在这里,我们通过结合拉曼光谱和原位高温高压技术,证明在 200 GPa 以上,随着温度的升高会发生新的相变,例如在 255 GPa 时为 480 K。如果将这种转变解释为熔化,则它将是这些高压下任何材料的最低熔化温度。我们还在相 I 和相 IV 之间以及新相中发现了一个新的三相点,并证明氢在该点附近保持其分子特征。这些数据可能需要对 200 GPa 以上的氢相图进行重大修订。

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