Energy dissipative mechanism of graphene foam materials

被引:48
作者
Wang, Chao [1 ]
Pan, Douxing [2 ]
Chen, Shaohua [3 ,4 ,5 ]
机构
[1] Chinese Acad Sci, Inst Mech, LNM, Beijing 100190, Peoples R China
[2] Chinese Acad Sci, Hefei Inst Phys Sci, Inst Adv Mfg Technol, Changzhou 213164, Peoples R China
[3] Beijing Inst Technol, Inst Adv Struct Technol, Beijing 100081, Peoples R China
[4] Beijing Inst Technol, Beijing Key Lab Lightweight Multifunct Composite, Beijing 100081, Peoples R China
[5] Beijing Inst Technol, Collaborat Innovat Ctr Elect Vehicles Beijing, Beijing 100081, Peoples R China
关键词
Graphene foam material; Energy dissipative mechanism; Coarse-grained molecular dynamic method; Stress-strain curve; Microstructural evolution; CHEMICAL-VAPOR-DEPOSITION; COARSE-GRAINED MODEL; MULTILAYER GRAPHENE; SPONGY GRAPHENE; POISSONS RATIO; AEROGELS; NETWORKS; BEHAVIOR;
D O I
10.1016/j.carbon.2018.02.085
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
Graphene foam (GrF) is a new kind of multi-porous material with many potential applications owing to its excellent multi-functional properties, especially its dissipation capability. However, both the dissipative mechanism and some experimental phenomena remain poorly understood. Here, systematic coarse-grained molecular dynamic simulations (CGMD) are conducted to study these issues. The typical stress-strain relationships found in experiments under large-strain loading-unloading and small-strain cyclic load are first reproduced. Based on microstructure analysis, three major dissipative mechanisms in the scale of flakes, i.e., rippling, sliding and impacting, are uncovered. The influencing effects of cycle number, strain magnitude and loading rate on dissipation are further investigated. It is found that the much higher dissipation in the first loading cycle is essentially due to drastic flake rearrangements, which decreases to a smaller one in subsequent cycles. In addition, the dissipation increases almost linearly with the strain magnitude in the first cycle, while it increases with a reduced slope in subsequent cycles due to the flake stacking structures. For a given strain magnitude, the dissipation will be enhanced as the loading rate increases. These results deepen our understanding on the dissipative mechanism of GrFs and should be helpful for the development of novel multi-functional graphene-based composites. (c) 2018 Elsevier Ltd. All rights reserved.
引用
收藏
页码:641 / 650
页数:10
相关论文
共 36 条
  • [1] From flat graphene to bulk carbon nanostructures
    Baimova, Julia A.
    Rysaeva, Leysan Kh
    Liu, Bo
    Dmitriev, Sergey V.
    Zhou, Kun
    [J]. PHYSICA STATUS SOLIDI B-BASIC SOLID STATE PHYSICS, 2015, 252 (07): : 1502 - 1507
  • [2] Spongy Graphene as a Highly Efficient and Recyclable Sorbent for Oils and Organic Solvents
    Bi, Hengchang
    Xie, Xiao
    Yin, Kuibo
    Zhou, Yilong
    Wan, Shu
    He, Longbing
    Xu, Feng
    Banhart, Florian
    Sun, Litao
    Ruoff, Rodney S.
    [J]. ADVANCED FUNCTIONAL MATERIALS, 2012, 22 (21) : 4421 - 4425
  • [3] Synthesis of Large-Area Graphene Layers on Poly-Nickel Substrate by Chemical Vapor Deposition: Wrinkle Formation
    Chae, Seung Jin
    Guenes, Fethullah
    Kim, Ki Kang
    Kim, Eun Sung
    Han, Gang Hee
    Kim, Soo Min
    Shin, Hyeon-Jin
    Yoon, Seon-Mi
    Choi, Jae-Young
    Park, Min Ho
    Yang, Cheol Woong
    Pribat, Didier
    Lee, Young Hee
    [J]. ADVANCED MATERIALS, 2009, 21 (22) : 2328 - +
  • [4] Hierarchical 3D mesoporous silicon@graphene nanoarchitectures for lithium ion batteries with superior performance
    Chen, Shuangqiang
    Bao, Peite
    Huang, Xiaodan
    Sun, Bing
    Wang, Guoxiu
    [J]. NANO RESEARCH, 2014, 7 (01) : 85 - 94
  • [5] Chen ZP, 2011, NAT MATER, V10, P424, DOI [10.1038/nmat3001, 10.1038/NMAT3001]
  • [6] Twisted and coiled ultralong multilayer graphene ribbons
    Cranford, Steven
    Buehler, Markus J.
    [J]. MODELLING AND SIMULATION IN MATERIALS SCIENCE AND ENGINEERING, 2011, 19 (05)
  • [7] Superlubricity of graphite
    Dienwiebel, M
    Verhoeven, GS
    Pradeep, N
    Frenken, JWM
    Heimberg, JA
    Zandbergen, HW
    [J]. PHYSICAL REVIEW LETTERS, 2004, 92 (12) : 126101 - 1
  • [8] Intrinsic ripples in graphene
    Fasolino, A.
    Los, J. H.
    Katsnelson, M. I.
    [J]. NATURE MATERIALS, 2007, 6 (11) : 858 - 861
  • [9] Dynamic ripples in single layer graphene
    He, Y. Z.
    Li, H.
    Si, P. C.
    Li, Y. F.
    Yu, H. Q.
    Zhang, X. Q.
    Ding, F.
    Liew, K. M.
    Liu, X. F.
    [J]. APPLIED PHYSICS LETTERS, 2011, 98 (06)
  • [10] High fidelity qubit readout with the superconducting low-inductance undulatory galvanometer microwave amplifier
    Hover, D.
    Zhu, S.
    Thorbeck, T.
    Ribeill, G. J.
    Sank, D.
    Kelly, J.
    Barends, R.
    Martinis, John M.
    McDermott, R.
    [J]. APPLIED PHYSICS LETTERS, 2014, 104 (15)