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Thermal transport properties of defective graphene:A molecular dynamics investigation 被引量:1

Thermal transport properties of defective graphene:A molecular dynamics investigation
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摘要 In this work the thermal transport properties of graphene nanoribbons with randomly distributed vacancy defects are investigated by the reverse non-equilibrium molecular dynamics method. We find that the thermal conductivity of the graphene nanoribbons decreases as the defect coverage increases and is saturated in a high defect ratio range. Further analysis reveals a strong mismatch in the phonon spectrum between the unsaturated carbon atoms in 2-fold coordination around the defects and the saturated carbon atoms in 3-fold coordination, which induces high interfacial thermal resistance in defective graphene and suppresses the thermal conductivity. The defects induce a complicated bonding transform from sp2 to hybrid sp--sp2 network and trigger vibration mode density redistribution, by which the phonon spectrum conversion and strong phonon scattering at defect sites are explained. These results shed new light on the understanding of the thermal transport behavior of graphene-based nanomaterials with new structural configurations and pave the way for future designs of thermal management phononic devices. In this work the thermal transport properties of graphene nanoribbons with randomly distributed vacancy defects are investigated by the reverse non-equilibrium molecular dynamics method. We find that the thermal conductivity of the graphene nanoribbons decreases as the defect coverage increases and is saturated in a high defect ratio range. Further analysis reveals a strong mismatch in the phonon spectrum between the unsaturated carbon atoms in 2-fold coordination around the defects and the saturated carbon atoms in 3-fold coordination, which induces high interfacial thermal resistance in defective graphene and suppresses the thermal conductivity. The defects induce a complicated bonding transform from sp2 to hybrid sp--sp2 network and trigger vibration mode density redistribution, by which the phonon spectrum conversion and strong phonon scattering at defect sites are explained. These results shed new light on the understanding of the thermal transport behavior of graphene-based nanomaterials with new structural configurations and pave the way for future designs of thermal management phononic devices.
作者 杨宇霖 卢宇
出处 《Chinese Physics B》 SCIE EI CAS CSCD 2014年第10期405-410,共6页 中国物理B(英文版)
基金 Project supported by the National Natural Science Foundation of China(Grant No.51202032) the National Key Project for Basic Research of China(Grant No.2011CBA00200) the Natural Science Foundation of Fujian Province,China(Grant Nos.2012J01004 and 2013J01009) the Funds from the Fujian Provincial Education Bureau,China(Grant No.GA12064)
关键词 thermal conductivity vacancy defect GRAPHENE molecular dynamics simulation thermal conductivity, vacancy defect, graphene, molecular dynamics simulation
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  • 1Novoselov K S, Geim A K, Morozov S V, Jiang D, Zhang Y, Dubonos S V, Grigorieva I V and Firsov A A 2004 Science 306 666.
  • 2Zheng Y P, Wei N, Fan Z Y, Xu L Q and Huang Z G 2011 Nanotechnology 22 405701.
  • 3Zheng Y, Xu L, Fan Z, Wei N, Lu Y and Huang Z 2012 Current Nanoscience 8 89.
  • 4Xu L, Wei N, Zheng Y, Fan Z, Wang H and Zheng J 2012 J. Mater. Chem. 22 1435.
  • 5Song J Q, Shi X, Zhang W Q and Chen L D 2013 Physics 42 112 (in Chinese).
  • 6Zhang G and Huang S Y 2013 Physics 42100 (in Chinese).
  • 7Zhou 1 and Li B W 2013 Physics 4289 (in Chinese).
  • 8Wu H Q, Linghu C Y, Lii H M and Qian H 2013 Chin. Phys. B 22 098106.
  • 9Balandin A A, Ghosh S, Bao W, Calizo I, Teweldebrhan D, Miao F and Lau C N 2008 Nano Lett. 8 902.
  • 10Seol 1 H, Jo I, Moore A L, Lindsay L, AitkenZ H, Pettes M T, Li X, Yao Z, Huang R, Broido D, et al. 2010 Science 328 213.

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