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Integrated Ferroelectrics
An International Journal
Volume 167, 2015 - Issue 1
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Original Articles

A Continuum Model of a Compressed Piezoelectric ZnO Rod: Analytical and Numerical Study

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Pages 146-153 | Received 18 Aug 2015, Accepted 18 Aug 2015, Published online: 21 Dec 2015

References

  • P. Fei, P.H. Yeh, J. Zhou, S. Xu, Y. Gao, J. Song, Y. Gu, Y. Huang, and Z.L. Wang, Piezoelectric potential gated field-effect transistor based on a free-standing ZnO wire. Nano Lett. 9, 3435–3439 (2009).
  • S.S. Kwon, W.K. Hong, G. Jo, J. Maeng, T.W. Kim, S. Song, and T. Lee, Piezoelectric effect on the electronic transport characteristics of ZnO nanowire field-effect transistors on bent flexible substrates. Adv. Mater. 20, 4557–4562 (2008).
  • Z.L. Wang, Nanopiezotronics. Adv. Mater. 19, 889–892 (2007).
  • J. Zhou, Y. Gu, P. Fei, W. Mai, Y. Gao, R. Yang, G. Bao, and Z.L. Wang, Flexible piezotronic strain sensor. Nano Lett. 8, 3035–3040 (2008).
  • J. Zhou, P. Fei, Y. Gao, Y. Gu, J. Liu, G. Bao, and Z.L. Wang, Mechanical-electrical triggers and sensors using piezoelectric micowires/nanowires. Nano Lett. 8, 2725–2730 (2008).
  • Z.L. Wang, and J. Song, Piezoelectric nanogenerators based on zinc oxide nanowire arrays. Science. 312, 242–246 (2006).
  • X. Wang, J. Song, J. Liu, and Z.L. Wang, Direct-Current Nanogenerator. Science. 102, 102–105 (2007).
  • Y. Qin, X. Wang, and Z.L. Wang, Microfibre-nanowire hybrid structure for energy scavenging. Nature. 451, 809–813 (2008).
  • R. Yang, Y. Qin, L. Dai, and Z.L. Wang, Power generation with laterally packaged piezoelectric fine wires. Nat. Nanotechnol. 4, 34–39 (2009).
  • Y. Gao, and Z.L. Wang, Electrostatic potential in a bent piezoelectric nanowire. The fundamental theory of nanogenerator and nanopiezotronics. Nano Lett. 7, 2499–2505 (2007).
  • H. Tong, B.L. Wang, and Z.C. Ou-Yang, Electric potential generated in ZnO nanowire due to piezoelectric effect. Thin Solid Films. 516, 2708–2710 (2008).
  • Z.Z. Shao, L.Y. Wen, D.M. Wu, X.F. Wang, X.A. Zhang, and S.L. Chang, A continuum model of piezoelectric potential generated in a bent ZnO nanorod. J. Phys. D. Appl. Phys. 43, 245403 (2010).
  • K. Momeni, G.M. Odegard, and R.S. Yassar, Nanocomposite electrical generator based on piezoelectric zinc oxide nanowires. J. Appl. Phys. 108, 114303 (2010).
  • K. Momeni, A multiscale approach to nanocomposite electrical generators. Nano Energy. 4, 132–139 (2014).
  • R. Agrawal, and H.D. Espinosa, Giant piezoelectric size effects in zinc oxide and gallium nitride nanowires. A first principles investigation. Nano Lett. 11, 786–790 (2011).
  • K. Momeni, and H. Attariani, Electromechanical properties of 1D ZnO nanostructures: nanopiezotronics building blocks, surface and size-scale effects. Phys. Chem. Chem. Phys. 16, 4522–4527 (2014).
  • K. Momeni, and S.M.Z Mortazavi, Optimal aspect ratio of zinc oxide nanowires for a nanocomposite electrical generator. Journal of Computational and Theoretical Nanoscience. 9, 1670–1674 (2012).
  • S.S. Lee, and R.M. White, Piezoelectric cantilever acoustic transducer. J. Micromechanics Microengineering. 8, 230–238 (1999).
  • X.Y. Du, Y.Q. Fu, J.K. Luo, A.J. Flewitt, and W.I. Milne, Microfluidic pumps employing surface acoustic waves generated in ZnO thin films. J. Appl. Phys. 024508 (2013).
  • M. Elwenspoek, and R. Wiegerink, Mechanical Microsensors. New York: Springer; 2001.
  • T. Ikeda, Fundamentals of piezoelectricity. Oxford: Oxford Unversity Press; 1990.
  • J.D. Jackson, Classical electrodynamics, third ed: Wiley; 1998.
  • C.Q. Chen, Y. Shi, Y.S. Zhang, J. Zhu, and Y.J. Yan, Size Dependence of Young's Modulus in ZnO Nanowires. Phys. Rev. Lett. 96, 075505 (2006).
  • COMSOL Multiphysics software piezoelectric material library (www.comsol.com)

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