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A Comparison of the Potential Capability of SFS, SPS and HVSFS for the Production of Photocatalytic Titania Coatings

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journal contribution
posted on 2019-04-24, 13:33 authored by B Robinson, A Tabecki, S Paul, G Shi, A Mills, IP Parkin, JA Darr, HLDV Lovelock
The photocatalytic capabilities of titanium dioxide are widely published. Reported applications of titania coatings include air purification, water purification and self-cleaning. Suspension spray has been highlighted as a possible route for the deposition of highly active nanostructured TiO2 coatings. Published work has demonstrated the capabilities of suspension plasma spray and high-velocity suspension flame spray; however, little work exists for suspension flame spray (SFS). Herein, these three suspension spray processes are compared as regards their capability to produce photocatalytic TiO2 coatings and their potential for industrial scale-up. A range of coatings were produced using each process, manipulating coating parameters in order to vary phase composition and other coating characteristics to modify the activity. The coatings produced varied significantly between the processes with SFS being the most effective technique as regards future scale-up and coating photoactivity. SFS coatings were found to be up to nine times more active than analogous coating produced by CVD.

Funding

This research was partially funded by the UK’s Technology Strategy Board (TSB) and the Engineering and Physical Sciences Research Council (EPSRC) under Project 100898 “Nanocrystalline Water Splitting Photodiodes II; Device Engineering, Integration & Scale-up”. The associated ESPRC EngDoc sponsorship for B Robinson was co-funded by TWI Limited under UCL’s Industrial Doctorate Centre.

History

Citation

Journal of Thermal Spray Technology, 2017, 26 (1-2), pp. 161-172 (12)

Author affiliation

/Organisation/COLLEGE OF SCIENCE AND ENGINEERING/Department of Engineering

Version

  • AM (Accepted Manuscript)

Published in

Journal of Thermal Spray Technology

Publisher

Springer Verlag (Germany), ASM International

issn

1059-9630

eissn

1544-1016

Copyright date

2016

Available date

2019-04-24

Publisher version

https://link.springer.com/article/10.1007/s11666-016-0512-7

Language

en