Cao Pinqiang, Wu Jianyang, Ning Fulong
School of Resource and Environmental Engineering, Wuhan University of Science and Technology, Wuhan, Hubei 430081, China.
Department of Physics, Research Institute for Biomimetics and Soft Matter, Fujian Provincial Key Laboratory for Soft Functional Materials Research, Xiamen University, Xiamen 361005, China.
Phys Chem Chem Phys. 2024 Mar 20;26(12):9388-9398. doi: 10.1039/d4cp00203b.
Understanding physicochemical properties of amorphous gas hydrate systems is of great significance to reveal structural stabilities of polycrystalline gas hydrate systems. Furthermore, amorphous gas hydrates can occur ordinarily in the nucleation events of gas hydrate systems. Herein, the mechanical properties of amorphous carbon dioxide hydrates are examined by means of all-atom classical molecular dynamic simulations. Our molecular simulation results reveal that mechanical strengths of amorphous carbon dioxide hydrates are evidently governed by temperatures, confining pressures, and ratios of water to carbon dioxide molecules. Notably, under compressive loads, amorphous carbon dioxide hydrates firstly exhibit monotonic strain hardening, followed by an interesting distinct phenomenon characterized by a steady flow stress at further large deformation strains. Furthermore, structural evolutions of amorphous carbon dioxide hydrates are analyzed on the basis of the N-Hbond DOP order parameter. These important findings can not only contribute to our understanding of the structural stabilities of amorphous gas hydrate systems, but also help to develop fundamental understandings about grain boundaries of gas hydrate systems.
了解非晶态气体水合物系统的物理化学性质对于揭示多晶态气体水合物系统的结构稳定性具有重要意义。此外,非晶态气体水合物通常会出现在气体水合物系统的成核过程中。在此,通过全原子经典分子动力学模拟研究了非晶态二氧化碳水合物的力学性能。我们的分子模拟结果表明,非晶态二氧化碳水合物的机械强度明显受温度、围压以及水分子与二氧化碳分子的比例影响。值得注意的是,在压缩载荷下,非晶态二氧化碳水合物首先表现出单调应变硬化,随后出现一种有趣的独特现象,即在进一步的大变形应变下呈现出稳定的流动应力。此外,基于N-H键DOP序参量分析了非晶态二氧化碳水合物的结构演变。这些重要发现不仅有助于我们理解非晶态气体水合物系统的结构稳定性,还有助于加深对气体水合物系统晶界的基本认识。