20
1 Nanostructural Members in Various Fields: A Literature Review
25. Ebrahimi, F., Salari, E.: Thermal buckling and free vibration analysis of size dependent Timoshenko FG nanobeams in thermal environments. Compos. Struct. 128, 363–380 (2015)
26. Ebrahimi, F., Barati, M.R.: Thermal environment effects on wave dispersion behaviour of
inhomogeneous strain gradient nanobeams based on higher order refined beam theory. J.
Therm. Stress. 39(12), 1560–1571 (2016)
27. Ghadiri, M., Hosseini, S.H.S., Shafiei, N.: A power series for vibration of a rotating nanobeam
with considering thermal effect. Mech. Adv. Mater. Struct. 23(12), 1414–1420 (2016)
28. Ebrahimi, F., Barati, M.R.: Thermal buckling analysis of size-dependent FG nanobeams based
on the third-order shear deformation beam theory. Acta Mech. Solida Sin. 29(5), 547–554
(2016)
29. Ebrahimi, F., Barati, M.R.: Vibration analysis of viscoelastic inhomogeneous nanobeams
resting on a viscoelastic foundation based on nonlocal strain gradient theory incorporating
surface and thermal effects. Acta Mech. 228, 1197–1210 (2017)
30. Abouelregal, A.E., Zenkour, A.M.: Thermoelastic response of nanobeam resonators subjected
to exponential decaying time varying load. J. Theor. Appl. Mech. 55(3), 937–948 (2017)
31. Shafiei, N., Ghadiri, M., Mahinzare, M.: Flapwise bending vibration analysis of rotary tapered
functionally graded nanobeam in thermal environment. Mech. Adv. Mater. Struct. 1–17 (2017)
32. Shahabinejad, E., Shafiei, N., Ghadiri, M.: Influence of temperature change on modal analysis
of rotary functionally graded nano-beam in thermal environment. J. Solid Mech. 10(4), 779–
803 (2018)
33. Arefi, M., Zenkour, A.M.: Thermal stress and deformation analysis of a size-dependent curved
nanobeam based on sinusoidal shear deformation theory. Alex. Eng. J. 57, 2177–2185 (2018)
34. McCutcheon, M.W., Deotare, P.B., Zhang, Y., Loncar, M.: High-Q transverseelectric/transverse-magnetic photonic crystal nanobeam cavities. Appl. Phys. Lett. 98, 111–
117 (2011)
35. Hu, B., Zhang, Y., Chen, W., Xu, Ch., Wang, Z.L.: Self-heating and external strain coupling
induced phase transition of V O 2 nanobeam as single domain switch. Adv. Mater. 23, 3536–
3541 (2011)
36. Liang, X., Shen, S.-P.: Dynamic analysis of Bernoulli-Euller piezoelectric nanobeam with
electrostatic force. Sci. China Phys. Mech. Astron. 56, 1930–1937 (2013)
37. Stabile, A.A., Singh, S.K., Wu, T.-L., Whittaker, L., Banerjee, S., Sambandamurthy, G.:
Separating electric field and thermal effects across the metal-insulator transition in vanadium
oxide nanobeams. Appl. Phys. Lett. 107, 013503 (2015)
38. Wang, L., Liu, S., Yi, J.: Vibration of Zinc oxide nanowires in electric field. In: ASME
International Mechanical Engineering Congress and Exposition, vol. 4B, p. V04BT05A036
(2017)
39. Phunpeng, V., Aphirakmethawong, J., Baiz, P.M.: Numerical analysis of piezoelectric
nanobeams with flexoelectric effect. In: Proceedings of 5th IIAE International Conference on
Industrial Application Engineering 2017, pp. 378–381 (2017)
40. Arefi, M., Pourjamshidian, M., Arani, G.: Free vibration analysis of a piezoelectric curved
sandwich nano-beam with FG-CNTRCs face-sheets based on various high-order shear deformation and nonlocal elasticity theories. Eur. Phys. J. Plus 133, 193–200 (2018)
41. Jasulaneca, L., Kosmaca, J., Meija, R., Andzane, J., Erts, D.: Review: electrostatically actuated nanobeam-based nanoelectromechanical switches materials solutions and operational
conditions. Beilstein J. Nanotechnol. 9, 271–300 (2018)
42. Arefi, M., Arani, A.H.S.: Higher order shear deformation bending results of a magnetoelectrothermoelastic functionally graded nanobeam in thermal, mechanical, electrical, and
magnetic environments. Mech. Based Des. Struct. Mach. 46(6), 669–692 (2018)
43. Arefi, M.: Magneto-electro-mechanical size-dependent vibration analysis of three-layered
nanobeam with initial curvature considering thickness stretching. Int. J. Nano Dimens. 10(1),
48–61 (2019)
44. Firouz-Abadi, R.D., Hosseinian, A.R.: Resonance frequencies and stability of a currentcarrying suspended nanobeam in a longitudinal magnetic field. Theor. Appl. Mech. Lett.
2, 031012 (2012)
1 Nanostructural Members in Various Fields: A Literature Review
25. Ebrahimi, F., Salari, E.: Thermal buckling and free vibration analysis of size dependent Timoshenko FG nanobeams in thermal environments. Compos. Struct. 128, 363–380 (2015)
26. Ebrahimi, F., Barati, M.R.: Thermal environment effects on wave dispersion behaviour of
inhomogeneous strain gradient nanobeams based on higher order refined beam theory. J.
Therm. Stress. 39(12), 1560–1571 (2016)
27. Ghadiri, M., Hosseini, S.H.S., Shafiei, N.: A power series for vibration of a rotating nanobeam
with considering thermal effect. Mech. Adv. Mater. Struct. 23(12), 1414–1420 (2016)
28. Ebrahimi, F., Barati, M.R.: Thermal buckling analysis of size-dependent FG nanobeams based
on the third-order shear deformation beam theory. Acta Mech. Solida Sin. 29(5), 547–554
(2016)
29. Ebrahimi, F., Barati, M.R.: Vibration analysis of viscoelastic inhomogeneous nanobeams
resting on a viscoelastic foundation based on nonlocal strain gradient theory incorporating
surface and thermal effects. Acta Mech. 228, 1197–1210 (2017)
30. Abouelregal, A.E., Zenkour, A.M.: Thermoelastic response of nanobeam resonators subjected
to exponential decaying time varying load. J. Theor. Appl. Mech. 55(3), 937–948 (2017)
31. Shafiei, N., Ghadiri, M., Mahinzare, M.: Flapwise bending vibration analysis of rotary tapered
functionally graded nanobeam in thermal environment. Mech. Adv. Mater. Struct. 1–17 (2017)
32. Shahabinejad, E., Shafiei, N., Ghadiri, M.: Influence of temperature change on modal analysis
of rotary functionally graded nano-beam in thermal environment. J. Solid Mech. 10(4), 779–
803 (2018)
33. Arefi, M., Zenkour, A.M.: Thermal stress and deformation analysis of a size-dependent curved
nanobeam based on sinusoidal shear deformation theory. Alex. Eng. J. 57, 2177–2185 (2018)
34. McCutcheon, M.W., Deotare, P.B., Zhang, Y., Loncar, M.: High-Q transverseelectric/transverse-magnetic photonic crystal nanobeam cavities. Appl. Phys. Lett. 98, 111–
117 (2011)
35. Hu, B., Zhang, Y., Chen, W., Xu, Ch., Wang, Z.L.: Self-heating and external strain coupling
induced phase transition of V O 2 nanobeam as single domain switch. Adv. Mater. 23, 3536–
3541 (2011)
36. Liang, X., Shen, S.-P.: Dynamic analysis of Bernoulli-Euller piezoelectric nanobeam with
electrostatic force. Sci. China Phys. Mech. Astron. 56, 1930–1937 (2013)
37. Stabile, A.A., Singh, S.K., Wu, T.-L., Whittaker, L., Banerjee, S., Sambandamurthy, G.:
Separating electric field and thermal effects across the metal-insulator transition in vanadium
oxide nanobeams. Appl. Phys. Lett. 107, 013503 (2015)
38. Wang, L., Liu, S., Yi, J.: Vibration of Zinc oxide nanowires in electric field. In: ASME
International Mechanical Engineering Congress and Exposition, vol. 4B, p. V04BT05A036
(2017)
39. Phunpeng, V., Aphirakmethawong, J., Baiz, P.M.: Numerical analysis of piezoelectric
nanobeams with flexoelectric effect. In: Proceedings of 5th IIAE International Conference on
Industrial Application Engineering 2017, pp. 378–381 (2017)
40. Arefi, M., Pourjamshidian, M., Arani, G.: Free vibration analysis of a piezoelectric curved
sandwich nano-beam with FG-CNTRCs face-sheets based on various high-order shear deformation and nonlocal elasticity theories. Eur. Phys. J. Plus 133, 193–200 (2018)
41. Jasulaneca, L., Kosmaca, J., Meija, R., Andzane, J., Erts, D.: Review: electrostatically actuated nanobeam-based nanoelectromechanical switches materials solutions and operational
conditions. Beilstein J. Nanotechnol. 9, 271–300 (2018)
42. Arefi, M., Arani, A.H.S.: Higher order shear deformation bending results of a magnetoelectrothermoelastic functionally graded nanobeam in thermal, mechanical, electrical, and
magnetic environments. Mech. Based Des. Struct. Mach. 46(6), 669–692 (2018)
43. Arefi, M.: Magneto-electro-mechanical size-dependent vibration analysis of three-layered
nanobeam with initial curvature considering thickness stretching. Int. J. Nano Dimens. 10(1),
48–61 (2019)
44. Firouz-Abadi, R.D., Hosseinian, A.R.: Resonance frequencies and stability of a currentcarrying suspended nanobeam in a longitudinal magnetic field. Theor. Appl. Mech. Lett.
2, 031012 (2012)
