论文标题
超冷水异常在势能景观上的异质放松中的结构起源的表现
Manifestations of the structural origin of supercooled water's anomalies in the heterogeneous relaxation on the potential energy landscape
论文作者
论文摘要
液态水以其在过冷状态下引人入胜的热力学异常而闻名。现象学两国模型 - 基于对液态水中两种类型的局部状态(或结构)存在的假设,在描述水的热力学异常方面非常成功。但是,这些在液态水中这些竞争的当地状态的确切结构特征仍然难以捉摸。在这里,我们采用了一种几何阶参数方法,可以明确地识别两种类型的竞争当地状态 - 熵和能量受欢迎 - 在TIP4P/2005液体水中具有明显不同的结构和能量特征。该识别基于在最小的陡峭能量最小化期间,系统在势能景观(PEL)中的异质结构松弛。这种异质放松的特征是使用受挫折磁系统中自旋玻璃过渡启发的顺序参数来表征的。我们进一步建立了两种状态的人口波动与超冷水中热容量的异常行为之间的直接关系。熵最受欢迎的局部状态的组成依赖性空间分布显示了一个有趣的交叉,从类似网络的单个群集到Widom线接近附近的空间分离式群集。此外,这项研究还建立了PEL的地形特征与超冷状态下水的热力学异常之间的直接关系,并为相位平面中的Widom线提供了替代标记(除了热力学响应函数的最大值源)。
Liquid water is well-known for its intriguing thermodynamic anomalies in the supercooled state. The phenomenological two-state models - based on the assumption of the existence of two types of competing local states (or, structures) in liquid water - have been extremely successful in describing water's thermodynamic anomalies. However, the precise structural features of these competing local states in liquid water still remain elusive. Here, we have employed a geometrical order parameter-free approach to unambiguously identify the two types of competing local states -- entropically and energetically-favored -- with significantly different structural and energetic features in the TIP4P/2005 liquid water. This identification is based on the heterogeneous structural relaxation of the system in the potential energy landscape (PEL) during the steepest-descent energy minimization. This heterogeneous relaxation is characterized using order parameters inspired by the spin-glass transition in frustrated magnetic systems. We have further established a direct relationship between the population fluctuation of the two states and the anomalous behavior of the heat capacity in supercooled water. The composition-dependent spatial distribution of the entropically-favored local states shows an interesting crossover from a spanning network-like single cluster to the spatially delocalized clusters in the close vicinity of the Widom line. Additionally, this study establishes a direct relationship between the topographic features of the PEL and the water's thermodynamic anomalies in the supercooled state and provides alternate markers (in addition to the locus of maxima of thermodynamic response functions) for the Widom line in the phase plane.