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Author

  • Jiang, Jin-Wu (3)
  • Rabczuk, Timon (3)
  • Park, Harold S. (1)
  • Wang, Bing-Shen (1)
  • Zhao, Jun-Hua (1)
  • Zhou, K. (1)

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  • Angewandte Mathematik (3)
  • Strukturmechanik (3)

Year of publication

  • 2012 (3) (remove)

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Superior thermal conductivity and extremely high mechanical strength in polyethylene chains from ab initio calculation (2012)
Jiang, Jin-Wu ; Zhao, Jun-Hua ; Zhou, K. ; Rabczuk, Timon
The upper limit of the thermal conductivity and the mechanical strength are predicted for the polyethylene chain, by performing the ab initio calculation and applying the quantum mechanical non-equilibrium Green’s function approach. Specially, there are two main findings from our calculation: (1) the thermal conductivity can reach a high value of 310 Wm−1 K−1 in a 100 nm polyethylene chain at room temperature and the thermal conductivity increases with the length of the chain; (2) the Young’s modulus in the polyethylene chain is as high as 374.5 GPa, and the polyethylene chain can sustain 32.85%±0.05% (ultimate) strain before undergoing structural phase transition into gaseous ethylene.
Enhancing the mass sensitivity of graphene nanoresonators via nonlinear oscillations: The effective strain mechanism (2012)
Jiang, Jin-Wu ; Park, Harold S. ; Rabczuk, Timon
Enhancing the mass sensitivity of graphene nanoresonators via nonlinear oscillations: The effective strain mechanism
Acoustic and breathing phonon modes in bilayer graphene with Moire-acute patterns (2012)
Jiang, Jin-Wu ; Wang, Bing-Shen ; Rabczuk, Timon
The lattice dynamics properties are investigated for twisting bilayer graphene. There are big jumps for the inter-layer potential at twisting angle θ=0° and 60°, implying the stability of Bernal-stacking and the instability of AA-stacking structures, while a long platform in [8,55]° indicates the ease of twisting bilayer graphene in this wide angle range. Significant frequency shifts are observed for the z breathing mode around θ=0° and 60°, while the frequency is a constant in a wide range [8,55]°. Using the z breathing mode, a mechanical nanoresonator is proposed to operate on a robust resonant frequency in terahertz range.
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