Hydrothermally formed functional niobium oxide doped tungsten nanorods


Autoria(s): Yu, Jerry; Yuan, Liu; Wen, Hao; Shafiei, Mahnaz; Field, Matthew; Jia, Liang; Yang, Jin; Liu, Zhi Fu; Wlodarski, Wojtek; Motta, Nunzio; Li, Yong Xiang; Zhang, Gengmin; Kalantar-zadeh, Kourosh; Lai, Peter To
Data(s)

13/12/2013

Resumo

Nanorod forms of metal oxides is recognised as one of the most remarkable morphologies. Their structure and functionality have driven important advancements in a vast range of electronic devices and applications. In this work, we postulate a novel concept to explain how numerous localised surface states can be engineered into the bandgap of niobium oxide nanorods using tungsten. We discuss their contributions as local state surface charges for the modulation of a Schottky barrier height, relative dielectric constant and their respective conduction mechanisms. Their effect on the hydrogen gas molecule interactions mechanisms are also examined herein. We synthesised niobium tungsten oxide (Nb17W2O25) nanorods via a hydrothermal growth method and evaluated the Schottky barrier height, ideality factor, dielectric constant and trap energy level from the measured I-V vs temperature characteristics in the presence of air and hydrogen to show the validity of our postulations.

Identificador

http://eprints.qut.edu.au/63441/

Publicador

Institute of Physics Publishing Ltd.

Relação

DOI:10.1088/0957-4484/24/49/495501

Yu, Jerry, Yuan, Liu, Wen, Hao, Shafiei, Mahnaz, Field, Matthew, Jia, Liang, Yang, Jin, Liu, Zhi Fu, Wlodarski, Wojtek, Motta, Nunzio, Li, Yong Xiang, Zhang, Gengmin, Kalantar-zadeh, Kourosh, & Lai, Peter To (2013) Hydrothermally formed functional niobium oxide doped tungsten nanorods. Nanotechnology, 24(49), p. 495501.

Fonte

School of Chemistry, Physics & Mechanical Engineering; Institute for Future Environments; Science & Engineering Faculty

Palavras-Chave #100700 NANOTECHNOLOGY #100705 Nanoelectronics #100708 Nanomaterials #Niobium oxide #tungsten oxide #nanorods #hydrothermal #hydrogen #localised states #thermionic emission #Poole-frenkel
Tipo

Journal Article