A comparison study on hydrogen sensing performance of Pt/MoO3 nanoplatelets coated with a thin layer of Ta2O5 or La2O3


Autoria(s): Yu, J.; Liu, Y.; Cai, F.X.; Shafiei, M.; Chen, G.; Motta, N.; Wlodarski, W.; Kalantar-zadeh, K.; Lai, P.T.
Contribuinte(s)

Zhang, Haixia

Data(s)

2013

Resumo

In this work, we investigate how hydrogen sensing performance of thermally evaporated MoO3 nanoplatelets can be further improved by RF sputtering a thin layer of tantalum oxide (Ta2O5) or lanthanum oxide (La2O3). We show that dissociated hydrogen atoms cause the thin film layer to be polarised, inducing a measurable potential difference greater than that as reported previously. We attribute these observations to the presence of numerous traps in the thin layer; their states allow a stronger trapping of charge at the Pt-thin film oxide interface as compared to the MoO3 sensors without the coating. Under exposure to H2 (10 000 ppm) the maximum change in dielectric constant of 45.6 (at 260 °C) for the Ta2O5/MoO3 nanoplatelets and 31.6 (at 220 °C) for La2O3/MoO3 nanoplatelets. Subsequently, the maximum sensitivity for the Ta2O5/MoO3 is 16.87 (at 260 °C) and La2O3/MoO3 is 7.52 (at 300 °C).

Formato

application/pdf

Identificador

http://eprints.qut.edu.au/59540/

Publicador

IEEE

Relação

http://eprints.qut.edu.au/59540/1/IEEE_NEMS2013.pdf

http://www.ieee-nems2013.org/

Yu, J., Liu, Y., Cai, F.X., Shafiei, M., Chen, G., Motta, N., Wlodarski, W., Kalantar-zadeh, K., & Lai, P.T. (2013) A comparison study on hydrogen sensing performance of Pt/MoO3 nanoplatelets coated with a thin layer of Ta2O5 or La2O3. In Zhang, Haixia (Ed.) Proceedings of the 8th Annual IEEE Nano/Micro Engineered and Molecular Systems (NEMS) Conference, IEEE, Suzhou, China, pp. 191-194.

Direitos

Copyright © 2013 by IEEE.

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Fonte

School of Chemistry, Physics & Mechanical Engineering; Science & Engineering Faculty

Palavras-Chave #030107 Sensor Technology (Chemical aspects) #100708 Nanomaterials #100712 Nanoscale Characterisation #hydrogen #sensor #metal oxide #heterostructure
Tipo

Conference Paper