Thermal conductivity and thermal rectification of nanoporous graphene: A molecular dynamics simulation

被引:56
|
作者
Yousefi, Farrokh [1 ]
Khoeini, Farhad [1 ]
Rajabpour, Ali [2 ]
机构
[1] Univ Zanjan, Dept Phys, Zanjan 45/95313, Iran
[2] Imam Khomeini Int Univ, Mech Engn Dept, ASCL, Qazvin 3414896818, Iran
关键词
Nanoporous graphene; Thermal conductivity; Thermal rectification; Molecular dynamics; THERMOELECTRIC PERFORMANCE; GRAIN-BOUNDARY; TRANSPORT; STRAIN; SIZE;
D O I
10.1016/j.ijheatmasstransfer.2019.118884
中图分类号
O414.1 [热力学];
学科分类号
摘要
Using non-equilibrium molecular dynamics (NEMD) simulation, we study thermal properties of the so-called nanoporous graphene (NPG) sheet which contains a series of nanoporous in an ordered way and was synthesized recently (Science 360 (2018), 199). The dependence of thermal conductivity on sample size, edge chirality, and porosity concentration are investigated. Our results indicate that the thermal conductivity of NPG is about two orders smaller compared with the pristine graphene. Therefore this sheet can be used as a thermoelectric material. Also, the porosity concentration helps us to tune the thermal conductivity. Moreover, the results show that the thermal conductivity increases with growing the sample length due to ballistic transport. On the other hand, along the armchair direction, the thermal conductivity is larger than the zigzag direction. We also examined the thermal properties of the interface of NPG and graphene. The temperature drops significantly through the interface leading to an interface thermal resistance. The interface thermal resistance changes with imposed heat flux direction, and this difference cause significantly large thermal rectification factor, and heat current prefers one direction to another. Besides, to investigate those quantities fundamentally, we study the phonon density of states and scattering of them. (C) 2019 Elsevier Ltd. All rights reserved.
引用
收藏
页数:7
相关论文
共 50 条
  • [21] Lattice thermal conductivity of nanoporous Si: Molecular dynamics study
    Lee, J. -H.
    Grossman, J. C.
    Reed, J.
    Galli, G.
    APPLIED PHYSICS LETTERS, 2007, 91 (22)
  • [22] Molecular dynamics simulation of thermal conductivity of nanofluids
    Krasnolutskii, S. L.
    Rudyak, V. Ya
    ALL-RUSSIAN CONFERENCE XXXIV SIBERIAN THERMOPHYSICAL SEMINAR, DEDICATED TO THE 85TH ANNIVERSARY OF ACADEMICIAN A. K. REBROV, 2018, 1105
  • [23] Thermal conductivity of ZnSe by molecular dynamics simulation
    Balasubramanian, AK
    Sankar, N
    Ramakrishnan, SK
    Ramachandran, K
    CRYSTAL RESEARCH AND TECHNOLOGY, 2004, 39 (06) : 558 - 563
  • [24] Molecular dynamics simulation of the thermal conductivity of nanofluids
    Li, Ling
    Guo, Li
    Yang, Mo
    Lu, Mei
    Yu, Min
    Kung Cheng Je Wu Li Hsueh Pao/Journal of Engineering Thermophysics, 2010, 31 (11): : 1933 - 1936
  • [25] Phonon thermal rectification in hybrid graphene-C3N: a molecular dynamics simulation
    Farzadian, O.
    Razeghiyadaki, A.
    Spitas, C.
    Kostas, K., V
    NANOTECHNOLOGY, 2020, 31 (48)
  • [26] Thermal rectification in nozzle-like graphene/boron nitride nanoribbons: A molecular dynamics simulation
    Dehaghani, Maryam Zarghami
    Molaei, Fatemeh
    Spitas, Christos
    Mashhadzadeh, Amin Hamed
    COMPUTATIONAL MATERIALS SCIENCE, 2022, 207
  • [27] Thermal Conductivity of Graphene Oxide: A Molecular Dynamics Study
    Chen, J.
    Li, L.
    JETP LETTERS, 2020, 112 (02) : 117 - 121
  • [28] Molecular Dynamics Calculation of Thermal Conductivity of Graphene Nanoribbons
    Hu, Jiuning
    Ruan, Xiulin
    Jiang, Zhigang
    Chen, Yong P.
    FRONTIERS OF CHARACTERIZATION AND METROLOGY FOR NANOELECTRONICS: 2009, 2009, 1173 : 135 - +
  • [29] Thermal Conductivity of Graphene Oxide: A Molecular Dynamics Study
    J. Chen
    L. Li
    JETP Letters, 2020, 112 : 117 - 121
  • [30] Thermal conductivity and thermal rectification in H-terminated graphene nanoribbons
    Fan, Haibiao
    Deng, Lin
    Yuan, Xiaoming
    Guo, Juan
    Li, Xialong
    Yang, Ping
    RSC ADVANCES, 2015, 5 (48) : 38001 - 38005