Zhu YinBo, Wang FengChao, Wu HengAn
CAS Key Laboratory of Mechanical Behavior and Design of Materials, Department of Modern Mechanics, CAS Center for Excellence in Nanoscience, University of Science and Technology of China, Hefei, Anhui 230027, China.
J Chem Phys. 2016 Aug 7;145(5):054704. doi: 10.1063/1.4959902.
Graphene confinement provides a new physical and mechanical environment with ultrahigh van der Waals pressure, resulting in new quasi-two-dimensional phases of few-layer ice. Polymorphic transition can occur in bilayer constrained water/ice system. Here, we perform a comprehensive study of the phase transition of AA-stacked bilayer water constrained within a graphene nanocapillary. The compression-limit and superheating-limit (phase) diagrams are obtained, based on the extensive molecular-dynamics simulations at numerous thermodynamic states. Liquid-to-solid, solid-to-solid, and solid-to-liquid-to-solid phase transitions are observed in the compression and superheating of bilayer water. Interestingly, there is a temperature threshold (∼275 K) in the compression-limit diagram, which indicates that the first-order and continuous-like phase transitions of bilayer water depend on the temperature. Two obviously different physical processes, compression and superheating, display similar structural evolution; that is, square ice-nanotube arrays (BL-VHDI) will bend first and then transform into bilayer triangular AA stacking ice (BL-AAI). The superheating limit of BL-VHDI exhibits local maxima, while that of BL-AAI increases monotonically. More importantly, from a mechanics point of view, we propose a novel mechanism of the transformation from BL-VHDI to BL-AAI, both for the compression and superheating limits. This structural transformation can be regarded as the "buckling failure" of the square-ice-nanotube columns, which is dominated by the lateral pressure.
石墨烯限域提供了一个具有超高范德华压力的新物理和力学环境,从而产生了少层冰的新型准二维相。双层受限水/冰系统中会发生多晶型转变。在此,我们对限制在石墨烯纳米毛细管内的AA堆叠双层水的相变进行了全面研究。基于在众多热力学状态下进行的广泛分子动力学模拟,获得了压缩极限和过热极限(相)图。在双层水的压缩和过热过程中观察到了液-固、固-固和固-液-固相变。有趣的是,在压缩极限图中有一个温度阈值(约275 K),这表明双层水的一级相变和类连续相变取决于温度。两个明显不同的物理过程,即压缩和过热,显示出相似的结构演化;也就是说,方形冰纳米管阵列(BL-VHDI)首先会弯曲,然后转变为双层三角形AA堆叠冰(BL-AAI)。BL-VHDI的过热极限呈现局部最大值,而BL-AAI的过热极限则单调增加。更重要的是,从力学角度来看,我们针对压缩极限和过热极限提出了一种从BL-VHDI转变为BL-AAI的新机制。这种结构转变可被视为方形冰纳米管柱的“屈曲失效”,其由侧向压力主导。