Wojtek Wlodarski
RMIT University
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Featured researches published by Wojtek Wlodarski.
ACS Nano | 2015
Jian Zhen Ou; Wanyin Ge; Benjamin J. Carey; Torben Daeneke; Asaf Rotbart; Wei Shan; Yichao Wang; Zhengqian Fu; Adam F. Chrimes; Wojtek Wlodarski; Salvy P. Russo; Yongxiang Li; Kourosh Kalantar-zadeh
Nitrogen dioxide (NO2) is a gas species that plays an important role in certain industrial, farming, and healthcare sectors. However, there are still significant challenges for NO2 sensing at low detection limits, especially in the presence of other interfering gases. The NO2 selectivity of current gas-sensing technologies is significantly traded-off with their sensitivity and reversibility as well as fabrication and operating costs. In this work, we present an important progress for selective and reversible NO2 sensing by demonstrating an economical sensing platform based on the charge transfer between physisorbed NO2 gas molecules and two-dimensional (2D) tin disulfide (SnS2) flakes at low operating temperatures. The device shows high sensitivity and superior selectivity to NO2 at operating temperatures of less than 160 °C, which are well below those of chemisorptive and ion conductive NO2 sensors with much poorer selectivity. At the same time, excellent reversibility of the sensor is demonstrated, which has rarely been observed in other 2D material counterparts. Such impressive features originate from the planar morphology of 2D SnS2 as well as unique physical affinity and favorable electronic band positions of this material that facilitate the NO2 physisorption and charge transfer at parts per billion levels. The 2D SnS2-based sensor provides a real solution for low-cost and selective NO2 gas sensing.
Sensors | 2013
Jin-Lan Chang; Muhammad Z. Ahmad; Wojtek Wlodarski; Eric R. Waclawik
Complex three-dimensional structures comprised of porous ZnO plates were synthesized in a controlled fashion by hydrothermal methods. Through subtle changes to reaction conditions, the ZnO structures could be self-assembled from 20 nm thick nanosheets into grass-like and flower-like structures which led to the exposure of high proportions of ZnO {0001} crystal facets for both these materials. The measured surface area of the flower-like and the grass, or platelet-like ZnO samples were 72.8 and 52.4 m2·g−1, respectively. Gas sensing results demonstrated that the porous, flower-like ZnO structures exhibited enhanced sensing performance towards NO2 gas compared with either grass-like ZnO or commercially sourced ZnO nanoparticle samples. The porous, flower-like ZnO structures provided a high surface area which enhanced the ZnO gas sensor response. X-ray photoelectron spectroscopy characterization revealed that flower-like ZnO samples possessed a higher percentage of oxygen vacancies than the other ZnO sample-types, which also contributed to their excellent gas sensing performance.
Journal of Materials Chemistry | 2015
Rosmalini Ab Kadir; Wei Zhang; Yichao Wang; Jian Zhen Ou; Wojtek Wlodarski; Anthony P. O'Mullane; Gary Bryant; Matthew Taylor; Kourosh Kalantar-zadeh
This paper reports the development of nanoporous tungsten trioxide (WO3) Schottky diode-based gas sensors. Nanoporous WO3 films were prepared by anodic oxidation of tungsten foil in ethylene glycol mixed with ammonium fluoride and a small amount of water. Anodization resulted in highly ordered WO3 films with a large surface-to-volume ratio. Utilizing these nanoporous structures, Schottky diode-based gas sensors were developed by depositing a platinum (Pt) catalytic contact and tested towards hydrogen gas and ethanol vapour. Analysis of the current–voltage characteristics and dynamic responses of the sensors indicated that these devices exhibited a larger voltage shift in the presence of hydrogen gas compared to ethanol vapour at an optimum operating temperature of 200 °C. The gas sensing mechanism was discussed, associating the response to the intercalating H+ species that are generated as a result of hydrogen and ethanol molecule breakdowns onto the Pt/WO3 contact and their spill over into nanoporous WO3.
Carbon | 2014
Michela Cittadini; Marco Bersani; Francesco Perrozzi; L. Ottaviano; Wojtek Wlodarski; Alessandro Martucci
Sensors and Actuators B-chemical | 2014
Rosmalini Ab Kadir; Rozina Abdul Rani; Ahmad Sabirin Zoolfakar; Jian Zhen Ou; M. Shafiei; Wojtek Wlodarski; Kourosh Kalantar-zadeh
Sensors and Actuators B-chemical | 2013
Muhammad Z. Ahmad; Abu Z. Sadek; Kay Latham; Jaroslaw Kita; Ralf Moos; Wojtek Wlodarski
Sensors and Actuators B-chemical | 2013
Muhammad Z. Ahmad; Anurat Wisitsoraat; Ahmad Sabirin Zoolfakar; Rosmalini Ab Kadir; Wojtek Wlodarski
International Journal of Hydrogen Energy | 2013
Muhammad Z. Ahmad; Vladimir B. Golovko; Rohul H. Adnan; Faridah Abu Bakar; Jan-Yves Ruzicka; Gunther G. Andersson; Wojtek Wlodarski
Institute for Future Environments; Science & Engineering Faculty | 2014
Rosmalini Ab Kadir; Rozina Abdul Rani; Ahmad Sabirin Zoolfakar; Jian Zhen Ou; Madhu Bhaskaran; Sharath Sriram; M. Shafiei; Wojtek Wlodarski; Kourosh Kalantar-zadeh
Archive | 2017
A. Wisitsoraat; Ditsayut Phokaratkul; Kata Jaruwongrangsee; Thitima M. Daniels; Wojtek Wlodarski