Graphene Oxide-Enhanced Nucleation and Growth of Calcium-Silicate-Hydrate Gel at Nanoscale: A Molecular Dynamics Study

被引:1
|
作者
Duan, Luyao [1 ]
Zhang, Junfei [1 ]
Ma, Guowei [1 ]
Pan, Zhu [1 ]
机构
[1] Hebei Univ Technol, Sch Civil & Transportat Engn, Tianjin 300401, Peoples R China
基金
中国国家自然科学基金;
关键词
C-S-H; HARDENED CEMENT PASTE; REACTIVE FORCE-FIELD; MECHANICAL-PROPERTIES; PORE STRUCTURE; MICROSTRUCTURE; CONCRETE; PERMEABILITY; NANOSHEETS; STRENGTH;
D O I
10.1021/acs.langmuir.4c02686
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Graphene oxide (GO) enhances the performance of cement-based materials by optimizing the microstructure of calcium-silicate-hydrate (C-S-H). However, the influence of GO on the nucleation and growth of C-S-H gel at nanoscale is unexplored. This study investigates this mechanism by molecular dynamics simulation at nano scale. Results show that GO can reduce the activation energy during the polymerization reaction of silicon oxide tetrahedra during the reaction process, and can increase the content of polymer Q3 and Q4. The influence of GO with epoxy (-O-), hydroxyl (-OH) and carboxyl (-COOH) groups on the radial distribution function (RDF), mean square displacement (MSD), and atomic spatial distribution of monomers are studied. Results show that GO-OH exhibits excellent performance, with the highest number of bridging oxygen atoms (about 0.6), the lowest Q0 monomer content (just 26.8%), the highest RDF (27.18), and the highest MSD (calcium and silicon content around 20,000 & Aring;2). This paper elucidates the nucleation and growth mechanism of C-S-H influenced by GO to develop high performance cement.
引用
收藏
页码:24330 / 24337
页数:8
相关论文
共 50 条
  • [31] Heterogeneous Nature of Calcium Silicate Hydrate (C-S-H) Gel: A Molecular Dynamics Study
    Jin, Shucheng
    Li, Jinhui
    Xu, Wenyuan
    Ding, Qingjun
    JOURNAL OF WUHAN UNIVERSITY OF TECHNOLOGY-MATERIALS SCIENCE EDITION, 2020, 35 (02): : 435 - 440
  • [32] Heterogeneous Nature of Calcium Silicate Hydrate(C-S-H) Gel:A Molecular Dynamics Study
    金书成
    LI Jinhui
    徐文远
    DING Qingjun
    Journal of Wuhan University of Technology(Materials Science), 2020, 35 (02) : 435 - 440
  • [33] Molecular dynamics modeling of the interface between surface functionalized graphitic structures and calcium-silicate-hydrate: Interaction energies, structure, and dynamics
    Sanchez, F.
    Zhang, L.
    JOURNAL OF COLLOID AND INTERFACE SCIENCE, 2008, 323 (02) : 349 - 358
  • [34] Stress relaxation properties of calcium silicate hydrate: a molecular dynamics study
    Geng, Zhicheng
    Tang, Shengwen
    Wang, Yang
    A, Hubao
    He, Zhen
    Wu, Kai
    Wang, Lei
    JOURNAL OF ZHEJIANG UNIVERSITY-SCIENCE A, 2024, 25 (02): : 97 - 115
  • [35] Molecular dynamics study on axial mechanical properties of calcium silicate hydrate
    Huang, Jiangzhang
    Fan, Yue
    Ouyang, Xiaowei
    MATERIALS RESEARCH EXPRESS, 2020, 7 (08)
  • [36] Molecular Dynamics Simulations of Graphene Pull-Out from Calcium Silicate Hydrate
    Li, Chen Yang
    Chen, Shu Jian
    Lu, Ye
    Duan, Wen Hui
    CONCREEP 10: MECHANICS AND PHYSICS OF CREEP, SHRINKAGE, AND DURABILITY OF CONCRETE AND CONCRETE STRUCTURES, 2015, : 913 - 918
  • [37] Insights on hydrolysis weakening of calcium silicate hydrate: a ReaxFF molecular dynamics study
    Hou, Dongshuai
    Yu, Jiao
    Zhang, Jinrui
    Zhang, Mengxi
    Dong, Biqin
    Shuili Xuebao/Journal of Hydraulic Engineering, 2021, 52 (01): : 34 - 41
  • [38] Ionic hydration structure, dynamics and adsorption mechanism of sulfate and sodium ions in the surface of calcium silicate hydrate gel: A molecular dynamics study
    Yang, Jun
    Hou, Dongshuai
    Ding, Qingjun
    APPLIED SURFACE SCIENCE, 2018, 448 : 559 - 570
  • [39] Interfacial bonding between graphene oxide and calcium silicate hydrate gel of ultra-high performance concrete
    Hongyan Wan
    Yu Zhang
    Materials and Structures, 2020, 53
  • [40] Interfacial bonding between graphene oxide and calcium silicate hydrate gel of ultra-high performance concrete
    Wan, Hongyan
    Zhang, Yu
    MATERIALS AND STRUCTURES, 2020, 53 (02)