Understanding the effect of nanoconfinement on the structure of water hydrogen bond networks

被引:20
|
作者
Oh, Myong In [1 ]
Gupta, Mayuri [1 ]
Oh, Chang In [2 ]
Weaver, Donald F. [3 ,4 ,5 ]
机构
[1] Univ Hlth Network, Krembil Res Inst, Toronto, ON M5T 0S8, Canada
[2] Univ Western Ontario, Dept Math, London, ON N6A 5B7, Canada
[3] Univ Toronto, Dept Med, Toronto, ON M5G 2C4, Canada
[4] Univ Toronto, Dept Chem, Toronto, ON M5G 2C4, Canada
[5] Univ Toronto, Dept Pharmaceut Sci, Toronto, ON M5G 2C4, Canada
关键词
GENERAL FORCE-FIELD; MOLECULAR-DYNAMICS SIMULATION; LIQUID WATER; RANDOM-WALKS; SMALL-WORLD; INTERFACIAL WATER; BILAYER SURFACE; PROTON-TRANSFER; TOPOLOGY; MODEL;
D O I
10.1039/c9cp05014k
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Using an integrated approach of network theory and atomistic molecular dynamics simulations, we performed a detailed topological analysis on hydrogen bond networks of water confined between either two graphene sheets or two lipid bilayers to explore the structural perturbation of these networks under nanoscale confinement. The hydrogen bond network structure can be perturbed to a considerable extent when water is confined by such surfaces, yet no small-world behaviour is observed. The presence of ions also reduces the network complexity but its effect may be small depending on the type of confining surfaces. We developed an information flow model to evaluate the fluctuating nature of hydrogen bond networks and to characterise the dynamic, long-distance hydrogen-bonded chains in water. We found that the length and directionality of the hydrogen bond "trails" are highly susceptible to the type of confining surfaces and the degree of confinement. In particular, the endpoints of the hydrogen bond trails are not completely random in confined water, in which inherent distributions are determined by the density of water and the density of hydrogen bonds. This work forms the basis for the study of the pure effect of hydrogen bond network topology on various transport processes, such as proton transfer, that occur along a sequence of hydrogen bonds in a biochemical system. Our results suggest that a combined effect of the structure and lifetime of the hydrogen bond network of interfacial water may contribute to high lateral proton diffusivity at the surface of a lipid membrane.
引用
收藏
页码:26237 / 26250
页数:14
相关论文
共 50 条
  • [1] Anomalies of water and hydrogen bond dynamics in hydrophobic nanoconfinement
    Kumar, Pradeep
    Han, Sungho
    Stanley, H. Eugene
    [J]. JOURNAL OF PHYSICS-CONDENSED MATTER, 2009, 21 (50)
  • [2] Networks of Hydrogen Bond Networks in Water Clusters
    Tokmachev, Andrey M.
    [J]. JOURNAL OF PHYSICAL CHEMISTRY A, 2024, 128 (14): : 2763 - 2771
  • [3] THE EFFECT OF PRESSURE ON THE HYDROGEN-BOND STRUCTURE OF LIQUID WATER
    PALINKAS, G
    BOPP, P
    JANCSO, G
    HEINZINGER, K
    [J]. ZEITSCHRIFT FUR NATURFORSCHUNG SECTION A-A JOURNAL OF PHYSICAL SCIENCES, 1984, 39 (02): : 179 - 185
  • [4] Hydrogen bond networks: Structure and evolution after hydrogen bond breaking
    Asbury, JB
    Steinel, T
    Fayer, MD
    [J]. JOURNAL OF PHYSICAL CHEMISTRY B, 2004, 108 (21): : 6544 - 6554
  • [6] Negligible effect of ions on the hydrogen-bond structure in liquid water
    Omta, AW
    Kropman, MF
    Woutersen, S
    Bakker, HJ
    [J]. SCIENCE, 2003, 301 (5631) : 347 - 349
  • [7] On the hydrogen bond structure of water at different densities
    Caffarena, ER
    Grigera, JR
    [J]. PHYSICA A-STATISTICAL MECHANICS AND ITS APPLICATIONS, 2004, 342 (1-2) : 34 - 39
  • [8] Effect of nanoconfinement on water and aqueous protons
    Bakker, Huib J.
    Liu, Liyuan
    Ottosson, Niklas
    [J]. ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2013, 246
  • [9] Uncooperative Effect of Hydrogen Bond on Water Dimer
    李丹慧
    张志远
    姜万润
    朱瑜
    高嶷
    王志刚
    [J]. Chinese Physics Letters, 2021, 38 (01) : 48 - 97
  • [10] Uncooperative Effect of Hydrogen Bond on Water Dimer
    Li, Danhui
    Zhang, Zhiyuan
    Jiang, Wanrun
    Zhu, Yu
    Gao, Yi
    Wang, Zhigang
    [J]. CHINESE PHYSICS LETTERS, 2021, 38 (01)