78
Views
1
CrossRef citations to date
0
Altmetric
Review Article

Experimental Study of Parametric Dependency of ZnO Nanorods-based Vibration Sensor

, , , &

References

  • T. M. Gür, “Review of electrical energy storage technologies, materials and systems: challenges and prospects for large-scale grid storage,” Energy Environ. Sci, Vol. 11, pp. 2696–2767, 2018.
  • C. Jun, J. Yang, Z. Li, X. Fan, Y. Zi, Q. Jing, and H. Guo, “Networks of triboelectric nanogenerators for harvesting water wave energy: a potential approach toward blue energy,” ACS Nano, Vol. 9, pp. 3324–3331, 2015.
  • Y. Xie, S. Wang, L. Lin, Q. Jing, Z.-H. Lin, S. Niu, Z. Wu, and Z. L. Wang, “Rotary triboelectric nanogenerator based on a hybridized mechanism for harvesting wind energy,” ACS Nano, Vol. 7, pp. 7119–7125, 2013.
  • Z. Guang, Y. Su, P. Bai, J. Chen, Q. Jing, W. Yang, and Z. L. Wang, “Harvesting water wave energy by asymmetric screening of electrostatic charges on a nanostructured hydrophobic thin-film surface,” ACS Nano, Vol. 6, pp. 6031–6037, 2014.
  • G. Q. Gu, C. B. Han, J. J. Tian, T. Jiang, C. He, C. X. Lu, Y. Bai, J. H. Nie, Z. Li, and Z. L. Wang, “Triboelectric nanogenerator enhanced multilayered antibacterial nanofiber air filters for efficient removal of ultrafine particulate matter,” Nano Res., Vol. 11, pp. 4090–4101, 2018.
  • Z. L. Wang, “Triboelectric nanogenerators as new energy technology for self-powered systems and as active mechanical and chemical sensors,” ACS Nano, Vol. 7, pp. 9533–9557, 2013.
  • Z. Wen, Q. Shen, and X. Sun, “Nanogenerators for self-powered gas sensing,” Nano-Micro Lett., Vol. 9, pp. 45, 2017.
  • T. A. Blank, L. P. Eksperiandova, and K. N. Belikov, “Recent trends of ceramic humidity sensors development: A review,” Sensor Actuat B-Chem. Vol. 228, pp. 416–442, 2016.
  • Z. Shujun, and F. Yu, “Piezoelectric materials for high temperature sensors,” J. Am. Ceram. Soc, Vol. 94, pp. 3153–3170, 2011.
  • K. Ramany, R. Shankararajan, K. Savarimuthu, P. Elumalai, G. Rajamanickam, S. Narendhiran, and R. Perumalsamy, “Experimental study of different vanadium dopant concentrations in ZnO nanorods for a low frequency piezoelectric accelerometer,” J. Electron. Mater, Vol. 48, pp. 5310–5322, 2019.
  • C. N. Sathyanarayana, S. Raja, and H. M. Ragavendra, “Procedure to use PZT sensors in vibration and load measurements,” Smart Mater. Res, Vol. 2013, pp. 1–9, 2013.
  • M. D. Williams, B. A. Griffin, T. N. Reagan, J. R. Underbrink, and M. Sheplak, “An AlN MEMS piezoelectric microphone for aeroacoustic applications,” J-Mems, Vol. 21, pp. 270–283, 2012.
  • K. Savarimuthu, R. Sankararajan, R. Govindaraj, and S. Narendhiran, “A comparative study on a flexible ZnO-based nano-generator using Schottky and p–n junction contact for energy harvesting applications,” Nanoscale., Vol. 10, pp. 16022–16029, 2018.
  • R. Shabannia, “Effects of growth duration and precursor concentration on the growth of ZnO nanorods synthesized by chemical bath deposition,” Iran J Sci Technol A, Vol. 40, pp. 19–25, 2016.
  • C. Baratto, “Growth and properties of ZnO nanorods by RF-sputtering for detection of toxic gases,” RSC Adv., Vol. 8, pp. 32038–32043, 2018.
  • A. Achour, M. Islam, S. Vizireanu, I. Ahmad, M. A. Akram, K. Saeed, G. Dinescu, and J.-J. Pireaux, “Orange/red photoluminescence enhancement upon SF6 plasma treatment of vertically aligned ZnO nanorods,” Nanomaterials, Vol. 9, pp. 794, 2019.
  • S. M. Saleh, A. M. Soliman, M. A. Sharaf, V. Kale, and B. Gadgil, “Influence of solvent in the synthesis of nano-structured ZnO by hydrothermal method and their application in solar-still,” J.Environ. Chem. Eng, Vol. 5, pp. 1219–1226, 2017.
  • W. Feng, J. Chen, and C.-y. Hou, “Growth and characterization of ZnO needles,” Appl. Nanosci., Vol. 4, pp. 15–18, 2014.
  • S. N. Ain, and R. M. Nor, “Sol–gel synthesis of zinc oxide nanoparticles using Citrus aurantifolia extracts,” Ceram. Int., Vol. 39, pp. S545–S548, 2013.
  • K. Vijayalakshmi, K. Karthick, P. Dhivya, and M. Sridharan, “Low power deposition of high quality hexagonal ZnO film grown on Al2O3(0001) sapphire by dc sputtering,” Ceram. Int, Vol. 39, pp. 5681–5687, 2013.
  • B. H. Soni, M. P. Deshpande, S. V. Bhatt, N. Garg, and S. H. Chaki, “Studies on ZnO nanorods synthesized by hydrothermal method and their characterization,” J. Nano-Electron. Phys, Vol. 5, pp. 04077–04083, 2013.
  • K. Ramany, R. Shankararajan, K. Savarimuthu, P. Elumalai, G. Rajamanickam, S. Narendhiran, and R. Perumalsamy, “Comparative study on hydrothermally synthesized undoped and vanadium doped Zinc Oxide nanorods for nanoelectromechanical systems low-frequency accelerometer application,” Thin Solid Films, Vol. 680, pp. 60–66, 2019.
  • M. Nandang, I. K. Laila, R. Idiawati, A. Fuad, A. Hidayat, and A. Taufiq, “The effect of growth temperature on the characteristics of ZnO nanorods and its optical properties,” J. Phys. Conf. Ser, Vol. 1057, pp. 012005–001214, 2018.
  • M. Guo, P. Diao, X. Wang, and S. Cai, “The effect of hydrothermal growth temperature on preparation and photoelectrochemical performance of ZnO nanorod array films,” J. Solid State Chem, Vol. 178, pp. 3210–3215, 2005.
  • K. Savarimuthu, G. Rajamanickam, R. Shankararajan, R. Perumal, and A. Rayarfrancis, “Experimental study on flexible ZnO based nanogenerator using schottky contact for energy harvesting applications,” IEEE T Nanotechnology, Vol. 16, pp. 469–476, 2017.
  • W. Khan, F. Khan, H. M. Ajmal, N. U. Huda, J. H. Kim, and S. D. Kim, “Evolution of structural and optical properties of ZnO nanorods grown on vacuum annealed seed crystallites,” J. Nanomater, Vol. 8, pp. 68–85, 2018.
  • S. Heinonen, J. P. Nikkanen, H. Hakola, E. Huttunen-Saarivirta, M. Kannisto, L. Hyvarinen, M. Jarveläinen, and E. Levanen, “Effect of temperature and concentration of precursors on morphology and photocatalytic activity of zinc oxide thin films prepared by hydrothermal rout,” Mat Sci Eng, Vol. 23, pp. 012030, 2016.
  • T. Fei, K. Kim, Y. Wang, R. Thapa, Y. Sharma, A. Modic, and A. C. Ahyi, “Growth of ZnO nanorod arrays on flexible substrates: Effect of precursor solution concentration,” ISRN. Nanomater., Vol. 2012, pp. 1–7, 2012.
  • M. Shaban, M. Zayed, and H. Hamdy, “Nanostructured ZnO thin films for self-cleaning applications,” RSC Adv., Vol. 7, pp. 617–631, 2017.
  • S. A. Nasser, H. H. Afify, S. A. El-Hakim, and M. K. Zayed, “Structural and physical properties of sprayed copper–zinc oxide films,” Thin Solid Films, Vol. 315, pp. 327–335, 1998.
  • P. Bindu, and S. Thomas, “Estimation of lattice strain in ZnO nanoparticles: X-ray peak profile analysis,” J. Theory Appl. Phys., Vol. 8, pp. 123–134, 2014.
  • M. A. Basyooni, M. Shaban, and A. M. El Sayed, “Enhanced gas sensing properties of spin-coated Na-doped ZnO nanostructured films,” Sci. Rep., Vol. 7, pp. 41716–41732, 2017.
  • S. Benramache, O. Belahssen, A. Guettaf, and A. Arif, “Correlation between electrical conductivity-optical band gap energy and precursor molarities ultrasonic spray deposition of ZnO thin films,” J. Semicond, Vol. 34, pp. 113001, 2013.
  • P. C. Chang, Z. Fan, D. Wang, W. Y. Tseng, W. A. Chiou, J. Hong, and J. G. Lu, “Zno nanowires synthesized by vapor trapping CVD method,” Chem. Mater., Vol. 16, pp. 5133–5137, 2004.
  • U. Ozgur, Y. I. Alivov, C. Liu, A. Teke, M. A. Reshchikov, S. Dogan, V. Avrutin, S. J. Cho, and H. Morkoc, “A comprehensive review of ZnO materials and devices,” J. Appl. Phys., Vol. 98, pp. 041301–041404, 2005.
  • O. Lupan, V. V. Ursaki, G. Chai, L. Chow, G. A. Emelchenko, I. M. Tiginyanu, A. N. Gruzintsev, and A. N. Redkin, “Selective hydrogen gas nanosensor using individual ZnO nanowire with fast response at room temperature,” Sensor Actuat B-Chem, Vol. 144, pp. 56–66, 2010.
  • G. M. Kumar, S. U. Yuldashev, T. W. Kang, and P. Ilanchezhiyan, “Fabrication of PEDOT: PSS/ZnO: S based hybrid heterostructures and their photoelectrical characteristics,” Mater. Lett., Vol. 170, pp. 199–201, 2016.
  • S.-Y. Kuo, J.-F. Yang, and F.-I. Lai, “Improved dye-sensitized solar cell with a ZnO nanotree photoanode by hydrothermal method,” Nanoscale Res. Let, Vol. 9, pp. 206–212, 2014.
  • E. S. Nour, C. O. Chey, M. Willander, and O. Nur, “Low frequency accelerator sensor based on piezoelectric ZnO nanorods grown by low temperature scalable process,” Phys. Status Solidi A, Vol. 213, pp. 2503–2508, 2016.
  • S. Song, H. C. Kim, J. W. Kim, D. Kim, and J. Kim, “Performance improvement of miniaturized ZnO nanowire accelerometer fabricated by refresh hydrothermal synthesis,” R. Soc. Open Sci., Vol. 4, pp. 170557–170565, 2017.
  • Y. H. Wang, P. Song, X. Li, C. Ru, G. Ferrari, P. Balasubramanian, M. Amabili, Y. Sun, and X. Liu, “A paper-based piezoelectric accelerometer,” Micromachines. (Basel), Vol. 9, pp. 1–12, 2018.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.