Optical gas sensing properties of nanoporous Nb2O5 films

Nanoporous Nb2O5 has been previously demonstrated to be a viable electrochromic material with strong intercalation characteristics. Despite showing such promising properties, its potential for optical gas sensing applications, which involves the production of ionic species such as H+, has yet to be...

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Published in:ACS Applied Materials and Interfaces
Main Author: Ab Kadir R.; Rani R.A.; Alsaif M.M.Y.A.; Ou J.Z.; Wlodarski W.; O'Mullane A.P.; Kalantar-Zadeh K.
Format: Article
Language:English
Published: American Chemical Society 2015
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-84924245397&doi=10.1021%2fam508463g&partnerID=40&md5=e44950c3fb85c61fe13019fb7be0f7b5
id 2-s2.0-84924245397
spelling 2-s2.0-84924245397
Ab Kadir R.; Rani R.A.; Alsaif M.M.Y.A.; Ou J.Z.; Wlodarski W.; O'Mullane A.P.; Kalantar-Zadeh K.
Optical gas sensing properties of nanoporous Nb2O5 films
2015
ACS Applied Materials and Interfaces
7
8
10.1021/am508463g
https://www.scopus.com/inward/record.uri?eid=2-s2.0-84924245397&doi=10.1021%2fam508463g&partnerID=40&md5=e44950c3fb85c61fe13019fb7be0f7b5
Nanoporous Nb2O5 has been previously demonstrated to be a viable electrochromic material with strong intercalation characteristics. Despite showing such promising properties, its potential for optical gas sensing applications, which involves the production of ionic species such as H+, has yet to be explored. Nanoporous Nb2O5 can accommodate a large amount of H+ ions in a process that results in an energy bandgap change of the material which induces an optical response. Here, we demonstrate the optical hydrogen gas (H2) sensing capability of nanoporous anodic Nb2O5 with a large surface-to-volume ratio prepared via a high temperature anodization method. The large active surface area of the film provides enhanced pathways for efficient hydrogen adsorption and dissociation, which are facilitated by a thin layer of Pt catalyst. We show that the process of H2 sensing causes optical modulations that are investigated in terms of response magnitudes and dynamics. The optical modulations induced by the intercalation process and sensing properties of nanoporous anodic Nb2O5 shown in this work can potentially be used for future optical gas sensing systems. © 2015 American Chemical Society.
American Chemical Society
19448244
English
Article
All Open Access; Green Open Access
author Ab Kadir R.; Rani R.A.; Alsaif M.M.Y.A.; Ou J.Z.; Wlodarski W.; O'Mullane A.P.; Kalantar-Zadeh K.
spellingShingle Ab Kadir R.; Rani R.A.; Alsaif M.M.Y.A.; Ou J.Z.; Wlodarski W.; O'Mullane A.P.; Kalantar-Zadeh K.
Optical gas sensing properties of nanoporous Nb2O5 films
author_facet Ab Kadir R.; Rani R.A.; Alsaif M.M.Y.A.; Ou J.Z.; Wlodarski W.; O'Mullane A.P.; Kalantar-Zadeh K.
author_sort Ab Kadir R.; Rani R.A.; Alsaif M.M.Y.A.; Ou J.Z.; Wlodarski W.; O'Mullane A.P.; Kalantar-Zadeh K.
title Optical gas sensing properties of nanoporous Nb2O5 films
title_short Optical gas sensing properties of nanoporous Nb2O5 films
title_full Optical gas sensing properties of nanoporous Nb2O5 films
title_fullStr Optical gas sensing properties of nanoporous Nb2O5 films
title_full_unstemmed Optical gas sensing properties of nanoporous Nb2O5 films
title_sort Optical gas sensing properties of nanoporous Nb2O5 films
publishDate 2015
container_title ACS Applied Materials and Interfaces
container_volume 7
container_issue 8
doi_str_mv 10.1021/am508463g
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-84924245397&doi=10.1021%2fam508463g&partnerID=40&md5=e44950c3fb85c61fe13019fb7be0f7b5
description Nanoporous Nb2O5 has been previously demonstrated to be a viable electrochromic material with strong intercalation characteristics. Despite showing such promising properties, its potential for optical gas sensing applications, which involves the production of ionic species such as H+, has yet to be explored. Nanoporous Nb2O5 can accommodate a large amount of H+ ions in a process that results in an energy bandgap change of the material which induces an optical response. Here, we demonstrate the optical hydrogen gas (H2) sensing capability of nanoporous anodic Nb2O5 with a large surface-to-volume ratio prepared via a high temperature anodization method. The large active surface area of the film provides enhanced pathways for efficient hydrogen adsorption and dissociation, which are facilitated by a thin layer of Pt catalyst. We show that the process of H2 sensing causes optical modulations that are investigated in terms of response magnitudes and dynamics. The optical modulations induced by the intercalation process and sensing properties of nanoporous anodic Nb2O5 shown in this work can potentially be used for future optical gas sensing systems. © 2015 American Chemical Society.
publisher American Chemical Society
issn 19448244
language English
format Article
accesstype All Open Access; Green Open Access
record_format scopus
collection Scopus
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