Have a personal or library account? Click to login
Microelectrode array systems for their use in single nanowire-based gas sensor platforms Cover

Microelectrode array systems for their use in single nanowire-based gas sensor platforms

Open Access
|May 2017

References

  1. [1] N. S. Ramgir, Y. Yang and M. Zacharias, ”Nanowire-Based Sensors”, Small, vol. 6, pp. 1705-1722, 2010.
  2. [2] D. R. Miller, S. A. Akbar and P. A. Morris, ”Nanoscale metal oxide-based heterojunctions for gas sensing: A review”, Sensors & Actuators: B. Chemical, vol. 204, pp. 250-272, 2014.10.1016/j.snb.2014.07.074
  3. [3] A. Gurlo, ”Nanosensors: towards morphological control of gas sensing activity”, SnO2, In2O3, ZnO and WO3 case studies.Nanoscale, vol. 3, pp. 154-165, 2011.10.1039/C0NR00560F
  4. [4] H. Huang, B. Liang, Z. Liu, X. Wang, D. Chen and G. Shen, ”Metal oxide nanowire transistors”, Journal of Materials Chemistry, vol. 22, pp. 13428-13445, 2012.
  5. [5] R. G. Hobbs, N. Petkov and J. D. Holmes, ”Semiconductor Nanowire Fabrication by Bottom-Up and Top-Down Paradigms”, Chemistry of Materials, vol. 24, pp. 1975-1991, 2012.
  6. [6] S. Vallejos, I. Grácia, O. Chmela, E. Figueras, J. Hubálek and C. Cané, ”Chemoresistive micromachined gas sensors based on functionalized metal oxide nanowires: Performance and reliability”, Sensors and Actuators B: Chemical, vol. 235, pp. 525-534, 2016.10.1016/j.snb.2016.05.102
  7. [7] S. Vallejos, P. Umek and C. Blackman, ”Aerosol Assisted Chemical Vapour Deposition Control Parameters for Selective Deposition of Tungsten Oxide Nanostructures”, Journal of Nanoscience and Nanotechnology, vol. 11, pp. 8214-8220, 2011.
  8. [8] M. Ling and C. Blackman, ”Growth mechanism of planar or nanorod structured tungsten oxide thin films deposited via aerosol assisted chemical vapour deposition (AACVD)”, physica status solidi (c), vol. 12, pp. 869-877, 2015.10.1002/pssc.201510047
  9. [9] N. K. R. Palapati, E. Pomerantseva and A. Subramanian, ”Single nanowire manipulation within dielectrophoretic force fields the sub-crossover frequency regime”, Nanoscale, vol. 7, pp. 3109-3116, 2015.
  10. [10] S. Raychaudhuri, S. A. Dayeh, D. Wang and E. T. Yu, ”Precise Semiconductor Nanowire Placement Through Dielectrophoresis”, Nano Letters, vol. 9, pp. 2260-2266, 2009.
  11. [11] I. Gablech, V. Svatoš, O. Caha, M. Hrabovsk´y, J. Prášek, J. Hubálek, et al ”Preparation of (001) preferentially oriented titanium thin films by ion-beam sputtering deposition on thermal silicon dioxide”, Journal of Materials Science, vol. 51, pp. 3329-3336, 2016.
  12. [12] S. Ashraf, C. S. Blackman, R. G. Palgrave, S. C. Naisbitt and I. P. Parkin, ”Aerosol assisted chemical vapour deposition of WO3 thin films from tungsten hexacarbonyl and their gas sensing properties”, Journal of Materials Chemistry, vol. 17, pp. 3708-3713, 2007.
  13. [13] N. Singh, PLEASE COMPLETE ”Sensing properties of different classes of gases based on the nanowire-electrode junction barrier modulation”, Nanoscale, vol. 3, pp. 1760-1765, 2011.
  14. [14] T.-Y. Wei, P.-H. Yeh, S.-Y. Lu and Z. L. Wang, ”Gigantic Enhancement Sensitivity Using Schottky Contacted Nanowire Nanosensor”, Jour. of the American Chemical Society, vol. 131, pp. 17690-17695, 2009.
DOI: https://doi.org/10.1515/jee-2017-0023 | Journal eISSN: 1339-309X | Journal ISSN: 1335-3632
Language: English
Page range: 158 - 162
Submitted on: Dec 15, 2016
Published on: May 9, 2017
Published by: Slovak University of Technology in Bratislava
In partnership with: Paradigm Publishing Services
Publication frequency: 6 issues per year

© 2017 Ondřej Chmela, Jakub Sadílek, Stella Vallejos, Jaromír Hubálek, published by Slovak University of Technology in Bratislava
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 License.