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相变、考兹曼曲线与逆熔化

Phase transitions, Kauzmann curves, and inverse melting.

作者信息

Stillinger Frank H, Debenedetti Pablo G

机构信息

Department of Chemistry, Princeton University, Princeton, NJ 08544, USA.

出版信息

Biophys Chem. 2003 Sep;105(2-3):211-20. doi: 10.1016/s0301-4622(03)00089-9.

Abstract

Walter Kauzmann's classic 1948 review of liquid supercooling and glass formation drew attention to the temperatures at which (by extrapolation) enthalpies and entropies of liquid and crystal phases would appear to become equal. In the temperature-pressure (T, p) plane, the collection of such 'Kauzmann temperatures' generate characteristic curves. The present study examines the connection of those Kauzmann loci to equilibrium inverse melting phenomena, i.e. cases where isobaric heating causes freezing of the liquid. Such cases are associated with local minima or maxima in the melting curve p(m)(T), and we point out the possible relevance of melting curve maxima to the thermodynamics of protein folding. Both equal-enthalpy and equal-entropy Kauzmann curves must pass through melting curve extrema. Three thermodynamic identities have been obtained to describe the vicinity of these points; they involve, respectively, the slopes of the two Kauzmann curves, and the second temperature derivative of the melting pressure. The second of these three equations is formally identical to the first Ehrenfest relation for second-order phase transitions, but carries no phase-transition implication. For purposes of specific numerical illustration, the inverse-melting behavior displayed by (3)He at low temperature has been analyzed in detail.

摘要

沃尔特·考兹曼1948年关于液体过冷和玻璃形成的经典综述,关注了(通过外推法得到的)液相和晶相的焓与熵似乎相等时的温度。在温度 - 压力(T, p)平面上,这些“考兹曼温度”的集合形成了特征曲线。本研究考察了这些考兹曼轨迹与平衡逆熔化现象的联系,即等压加热导致液体凝固的情况。这种情况与熔化曲线p(m)(T)中的局部最小值或最大值相关,并且我们指出了熔化曲线最大值与蛋白质折叠热力学的可能关联。等焓和等熵的考兹曼曲线都必须经过熔化曲线的极值点。已经得到了三个热力学恒等式来描述这些点的附近情况;它们分别涉及两条考兹曼曲线的斜率以及熔化压力的二阶温度导数。这三个方程中的第二个在形式上与二阶相变的第一个埃伦费斯特关系相同,但不具有相变的含义。为了进行具体的数值说明,详细分析了低温下³He所表现出的逆熔化行为。

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