Polymorphism and polyamorphism in bilayer water confined to slit nanopore under high pressure

被引:129
|
作者
Bai, Jaeil [1 ]
Zeng, Xiao Cheng [1 ]
机构
[1] Univ Nebraska, Dept Chem, Lincoln, NE 68588 USA
基金
美国国家科学基金会;
关键词
bilayer water and ice; molecular dynamics simulation; bilayer methane hydrate; amorphous-to-amorphous transition; DENSITY AMORPHOUS ICE; LIQUID-PHASES; GLASSY WATER; I-H; CLATHRATE; TEMPERATURE; TRANSITIONS; STATE;
D O I
10.1073/pnas.1213342110
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
A distinctive physical property of bulk water is its rich solid-state phase behavior, which includes 15 crystalline (ice I-ice XIV) and at least 3 glassy forms of water, namely, low-density amorphous, high-density amorphous, and very-high-density amorphous (VHDA). Nanoscale confinement adds a new physical variable that can result in a wealth of new quasi-2D phases of ice and amorphous ice. Previous computer simulations have revealed that when water is confined between two flat hydrophobic plates about 7-9 angstrom apart, numerous bilayer (BL) ices (or polymorphs) can arise [e. g., BL-hexagonal ice (BL-ice I)]. Indeed, growth of the BL-ice I through vapor deposition on graphene/Pt(111) substrate has been achieved experimentally. Herein, we report computer simulation evidence of pressure-induced amorphization from BL-ice I to BL-amorphous and then to BL-VHDA(2) at 250 K and 3 GPa. In particular, BL-VHDA(2) can transform into BL-VHDA(1) via decompression from 3 to 1.5 GPa at 250 K. This phenomenon of 2D polyamorphic transition is akin to the pressure- induced amorphization in 3D ice (e. g., from hexagonal ice to HDA and then to VHDA via isobaric annealing). Moreover, when the BL-ice I is compressed instantly to 6 GPa, a new very-high-density BL ice is formed. This new phase of BL ice can be viewed as an array of square ice nanotubes. Insights obtained from pressure-induced amorphization and crystallization of confined water offer a guide with which to seek a thermodynamic path to grow a new form of methane clathrate whose BL ice framework exhibits the Archimedean 4.8(2) (square-octagon) pattern.
引用
收藏
页码:21240 / 21245
页数:6
相关论文
共 50 条
  • [41] TUNNELING IN FRIABLE SANDSTONE UNDER HIGH WATER-PRESSURE
    ESLAVA, LF
    MARULANDA, A
    RODRIGUEZ, AJ
    TUNNELS AND WATER, VOLS 1-3: WATER AND ITS INFLUENCE ON THE DESIGN, CONSTRUCTION, AND EXPLOITATION OF TUNNELS AND UNDERGROUND WORKS, 1989, : 1325 - 1332
  • [42] The effect of nitrogen and water on phosphorous in high temperatures and under pressure
    Ipatiew, W
    Nikolajew, W
    BERICHTE DER DEUTSCHEN CHEMISCHEN GESELLSCHAFT, 1926, 59 : 595 - 597
  • [43] Cavitation in water jet under high ambient pressure conditions
    Peng, Kewen
    Tian, Shouceng
    Li, Gensheng
    Huang, Zhongwei
    Zhang, Zhenxiang
    EXPERIMENTAL THERMAL AND FLUID SCIENCE, 2017, 89 : 9 - 18
  • [44] SOLUBILITY OF AMMONIA IN WATER IN MULTICOMPONENT SYSTEM UNDER HIGH PRESSURE
    沈华民
    翁孟炎
    魏柏益
    JournalofChemicalIndustryandEngineering, 1987, (01) : 1 - 16
  • [45] Superionic xenon-water compounds under high pressure
    Hu, Kai
    Geng, Yixing
    Zhu, Kun
    Gu, Yuqiu
    Yu, Jinqing
    PHYSICS LETTERS A, 2024, 514
  • [46] VISCOSITY OF (WATER + ALCOHOL) MIXTURES UNDER HIGH-PRESSURE
    TANAKA, Y
    MATSUDA, Y
    FUJIWARA, H
    KUBOTA, H
    MAKITA, T
    INTERNATIONAL JOURNAL OF THERMOPHYSICS, 1987, 8 (02) : 147 - 163
  • [47] Water-Soluble CdTe Nanocrystals under High Pressure
    Lin, Yan-Cheng
    QUANTUM DOTS AND NANOSTRUCTURES: SYNTHESIS CHARACTERIZATION AND MODELING XII, 2015, 9373
  • [48] Damage mechanism of coal under high pressure water jetting
    Mu Chao-min
    Wang Hai-lu
    ROCK AND SOIL MECHANICS, 2013, 34 (05) : 1515 - 1520
  • [49] Volumetric behaviour of water under high pressure at subzero temperature
    Sotani, T
    Arabas, J
    Kubota, H
    Kijima, M
    Asada, S
    HIGH TEMPERATURES-HIGH PRESSURES, 2000, 32 (04) : 433 - 440
  • [50] SOLUBILITY OF CADMIUM IODIDE IN WATER UNDER HIGH-PRESSURE
    KOVALENKO, YA
    CHURAGUL.BR
    KALASHNI.YA
    ZHURNAL FIZICHESKOI KHIMII, 1972, 46 (08): : 2160 - +