Quantum chemical calculation of the interaction between lignite and water molecules

被引:0
|
作者
Xu, Zhiqiang [1 ]
Liu, Xiangyang [1 ]
Tu, Yanan [1 ]
Liu, Dinghua [1 ]
Ren, Guanlin [1 ]
机构
[1] School of Chemical& Environmental Engineering, China University of Mining and Technology (Beijing), Beijing,100083, China
关键词
Carbonyl groups - Coordination layer - Density-functional-theory - Ether bond - Extreme points - Interaction energies - Oxygen-containing functional groups - Structural unit - Water molecule - Weak interactions;
D O I
暂无
中图分类号
学科分类号
摘要
The high water content of lignite limits its large-scale utilization. It is of great theoretical significance to study the water-holding mechanism of lignite and reveal the nature of hydrogen bonding between oxygen-containing functional groups and water molecules for guiding the dewatering of lignite. The ordered structure of water molecules on the lignite surface and the interaction menchanism between lignite structural units and water molecules were studied by the ab initio molecular dynamics (AIMD) and density flooding theory (DFT) respectively. The results showed that the water molecules at the interface formed the first coordination layer and the second coordination layer near 0.192 nm and 0.322 nm, respectively. The extreme points of negative potential for the lignite structural unit were mainly located near the oxygen atoms in the oxygen-containing functional groups, with a maximum of -154.20 kJ/mol. Meanwhile, the extreme points of the positive potential were mainly located near the hydrogen atoms in the oxygen-containing functional groups and the benzene rings, with a maximum of 221.08 kJ/mol. The four dimer binding energies of water molecules near the carboxyl, hydroxyl, carbonyl and ether bonds were -47.76, -29.44, -40.45 and -23.36 kJ/mol, respectively. The electrostatic interactions accounted for 65.92%, 67.45%, 55.99% and 65.19% of total attraction energy, respectively. In addition, the results of atoms in molecules(AIM) topological analysis indicated that the total hydrogen bonding interaction energies were ranked as follows: carboxyl group > hydroxyl > ether bond > carbonyl group. Among these oxygen-containing functional groups, the water molecules in the vicinity of the carbonyl group were easier to interact with other parts of lignite structural unit, and thus the interaction energy between the water molecules and the carbonyl group was minimized. © 2022, Editorial Board of Journal of CUMT. All right reserved.
引用
收藏
页码:554 / 561
相关论文
共 50 条
  • [41] A quantum chemical study on the chemical environment of water molecules adsorbed on the anatase surface
    O. Smirnova
    A. Grebenyuk
    V. Lobanov
    Applied Nanoscience, 2019, 9 : 1251 - 1254
  • [42] A quantum chemical study on the chemical environment of water molecules adsorbed on the anatase surface
    Smirnova, O.
    Grebenyuk, A.
    Lobanov, V.
    APPLIED NANOSCIENCE, 2019, 9 (05) : 1251 - 1254
  • [43] Fractionation of peptide with disulfide bond for quantum mechanical calculation of interaction energy with molecules
    Chen, XH
    Zhang, DW
    Zhang, JZH
    JOURNAL OF CHEMICAL PHYSICS, 2004, 120 (02): : 839 - 844
  • [44] Quantum chemical study of the adsorption of water molecules on kaolinite surfaces
    Zhang, Chao
    Qi, Yong-Hua
    Qian, Ping
    Zhong, Ming-Jing
    Wang, Liang
    Yin, Hong-Zong
    COMPUTATIONAL AND THEORETICAL CHEMISTRY, 2014, 1046 : 10 - 19
  • [45] Efficient Quantum Chemical Calculation of Structure Ensembles and Free Energies for Nonrigid Molecules
    Grimme, Stefan
    Bohle, Fabian
    Hansen, Andreas
    Pracht, Philipp
    Spicher, Sebastian
    Stahn, Marcel
    JOURNAL OF PHYSICAL CHEMISTRY A, 2021, 125 (19): : 4039 - 4054
  • [46] QUANTUM-CHEMICAL METHODS FOR THE CALCULATION OF INTERACTIONS OF MOLECULES WITH CLUSTERS OF METAL ATOMS
    HASLINGEROVA, I
    CHEMICKE LISTY, 1983, 77 (12): : 1233 - 1261
  • [47] Quantum chemical study of the interaction of nitrate anion with water
    Ebner, C
    Sansone, R
    Probst, M
    INTERNATIONAL JOURNAL OF QUANTUM CHEMISTRY, 1998, 70 (4-5) : 877 - 886
  • [48] QUANTUM-CHEMICAL STUDY OF INTERACTION OF WATER WITH UREA
    BURSHTEIN, KY
    KHURGIN, YI
    BULLETIN OF THE ACADEMY OF SCIENCES OF THE USSR DIVISION OF CHEMICAL SCIENCE, 1984, 33 (09): : 1864 - 1868
  • [49] QUANTUM CHEMICAL CALCULATION OF INTERMOLECULAR INTERACTION POTENTIALS, MAINLY OF VANDERWAALS TYPE
    KUTZELNIGG, W
    FARADAY DISCUSSIONS, 1977, 62 : 185 - 196
  • [50] Quantum chemical calculation on the interaction of hydrogen isotopes with materials for energy system
    Tanaka, S
    Tanigawa, H
    MATERIALS FOR ADVANCED ENERGY SYSTEMS AND FISSION AND FUSION ENGINEERING, PROCEEDINGS, 2003, : 79 - 85