HomePhilippine Journal of Material Science and Nanotechnologyvol. 5 no. 2 (2019)

Nanomanipulation of Metal Oxide Nanomaterials

Normie Jean Sajor | Raymund S. Olarve | Gil Nonato C. Santos | Victor Koledov | Svetlana Gratowski

 

Abstract:

Metal oxide nanomaterials from zinc oxide bulk powder and tin (II) oxide bulk powder were synthesized via Horizontal Vapor Phase Crystal Growth deposition technique. Fabricated nanocrystals were successfully deposited on a silica quartz tube and were used as the sensing element of a fabricated gas sensor. Both zinc oxide and tin oxide showed nanowire structures. This indicated a high surface-to-volume ratio which favors the adsorption of gases on the sensing element which increases the sensitivity of the device.



References:

1.  Vollmer, F., & Arnold, S. Whispering-gallery-mode biosensing: label-free detection down to single molecules. (Nature methods, 2008)5(7), 591.

2.  He, L., Özdemir, Ş. K., Zhu, J., Kim, W., & Yang, L. Detecting single viruses and nanoparticles using whispering gallery microlasers. (Nature nanotechnology, 2011), 6(7), 428.

3.  Mitra, A., Deutsch, B., Ignatovich, F., Dykes, C., & Novotny, L. Nano-optofluidic detection of single viruses and nanoparticles. (ACS nano, 2010). 4(3), 1305-1312.

4.  Yu, W., Jiang, W. C., Lin, Q., & Lu, T. Cavity optomechanical spring sensing of single molecules. (Nature communications, 7, 12311, 2016).

5.  Mayer, K. M., Hao, F., Lee, S., Nordlander, P., & Hafner, J. H. A single molecule immunoassay by localized surface plasmon resonance. (Nanotechnology, 21(25), 255503, 2010).

6.  Ament, I., Prasad, J., Henkel, A., Schmachtel, S., & Sö nnichsen, C. Single unlabeled protein detection on individual plasmonic nanoparticles. (Nano letters, 12(2), 2012). 1092-1095.

7.  Boyd, R. W., & Heebner, J. E. Sensitive disk resonator photonic biosensor. (Applied Optics, 40(31),2001). 5742-5747.

8.  Williams, K. A., Veenhuizen, P. T., Beatriz, G., Eritja, R., & Dekker, C. Nanotechnology: carbon nanotubes with DNA recognition. (Nature, 420(6917), 2002). 761.

9.  Besteman, K., Lee, J. O., Wiertz, F. G., Heering, H. A., & Dekker, C. Enzyme-coated carbon nanotubes as single-molecule biosensors. (Nano letters, 3(6), 2003). 727-730.

10.  Patolsky, F., & Lieber, C. M. Nanowire nanosensors. (Materials today, 8(4), 2005). 20-28.

11.  Koledov, V., Shavrov, V., Lega, P., von Gratowski, S., Shelyakov, A., Orlov, A., ... & Mashirov, A. Nano-Manipulation, Nano-Manufacturing, Nano-Measurements by New Smart Material-Based Mechanical Nanotools. In 2018 IEEE International Conference on Manipulation, Manufacturing and Measurement on the Nanoscale (3M-NANO, 2018, August).) (pp. 171-176). IEEE.

12.  Coleman, C., Ncube, S., Mosse, I. S., Irzhak, A., Koledov, V., Gratowski, S., ... & Bhattacharyya, S. Bottom-Up Nanointegration Technique for Novel Functionalized Carbon Nanotube and Multi-layer Graphene Device Fabrication. In 2018 IEEE International Conference on Manipulation, Manufacturing and Measurement on the Nanoscale (3M-NANO, 2018, August).) (pp. 177-180). IEEE.

13.  Nakhleh, M et al. Detecting Active Pulmonary Tuberculosis with a breath test using nanomaterial based sensors (European Respiratory Journal 2014). 43: pp 1522-1525

14.  Cheepsattayakorn A and Cheepsattayakorn, R. Breath Tests in Diagnosis of Pulmonary Tuberculosis (Bentham Science Publishers, 2014) Recent Patents on Biotechnology 8 pp 172-175