Hydrogen sensing enhancement of zinc oxide nanorods via voltage biasing

The capability of zinc oxide (ZnO) as a hydrogen sensing element has been pushed to its limits. Different methods have been explored to extend its sensing capability. In this paper, we report a novel approach which significantly improves the hydrogen sensing capability of zinc oxide by applying a bi...

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Main Authors: Thye Foo Choo, Nur Ubaidah Saidin, Kuan Ying Kok
Format: Article
Language:English
Published: The Royal Society 2018-01-01
Series:Royal Society Open Science
Subjects:
zno
Online Access:https://royalsocietypublishing.org/doi/pdf/10.1098/rsos.172372
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spelling doaj-132df304d9494fd2af2ad83ee33ed8e92020-11-25T04:04:31ZengThe Royal SocietyRoyal Society Open Science2054-57032018-01-015510.1098/rsos.172372172372Hydrogen sensing enhancement of zinc oxide nanorods via voltage biasingThye Foo ChooNur Ubaidah SaidinKuan Ying KokThe capability of zinc oxide (ZnO) as a hydrogen sensing element has been pushed to its limits. Different methods have been explored to extend its sensing capability. In this paper, we report a novel approach which significantly improves the hydrogen sensing capability of zinc oxide by applying a bias voltage to ZnO nanorods as the sensing elements. Zinc oxide in the form of aligned nanorods was first synthesized on an Au-coated Si(111) substrate using a facile method via the galvanic-assisted chemical process. The sensing performance of the zinc oxide nanorods was investigated in response to the applied biasing voltage. It was found that the sensitivity, response time and detection limit of the ZnO sensing elements were dramatically improved with increasing bias voltage. A 100% increment in sensing response was achieved for the detection of 2000 ppm hydrogen gas when the bias voltage was increased from −2 to −6 V with 70% reduction in response and recovery times. This remarkable sensing performance is attributed to the reaction of hydrogen with chemisorbed oxygen ions on the surface of the ZnO nanorods that served as the electron donors to increase the sensor conductance. Higher reverse bias voltages sweep the electrons faster across the electrodes. This shortened the response time and, at the same time, depleted the electrons in the sensor elements and weakens oxygen adsorption. The oxygen ions could then be readily removed by hydrogen, leading to a higher sensitivity of the sensors. This, therefore, envisages a way for high-speed hydrogen gas sensing with high detection sensitivities.https://royalsocietypublishing.org/doi/pdf/10.1098/rsos.172372znohydrogen sensorchemicalbias voltage
collection DOAJ
language English
format Article
sources DOAJ
author Thye Foo Choo
Nur Ubaidah Saidin
Kuan Ying Kok
spellingShingle Thye Foo Choo
Nur Ubaidah Saidin
Kuan Ying Kok
Hydrogen sensing enhancement of zinc oxide nanorods via voltage biasing
Royal Society Open Science
zno
hydrogen sensor
chemical
bias voltage
author_facet Thye Foo Choo
Nur Ubaidah Saidin
Kuan Ying Kok
author_sort Thye Foo Choo
title Hydrogen sensing enhancement of zinc oxide nanorods via voltage biasing
title_short Hydrogen sensing enhancement of zinc oxide nanorods via voltage biasing
title_full Hydrogen sensing enhancement of zinc oxide nanorods via voltage biasing
title_fullStr Hydrogen sensing enhancement of zinc oxide nanorods via voltage biasing
title_full_unstemmed Hydrogen sensing enhancement of zinc oxide nanorods via voltage biasing
title_sort hydrogen sensing enhancement of zinc oxide nanorods via voltage biasing
publisher The Royal Society
series Royal Society Open Science
issn 2054-5703
publishDate 2018-01-01
description The capability of zinc oxide (ZnO) as a hydrogen sensing element has been pushed to its limits. Different methods have been explored to extend its sensing capability. In this paper, we report a novel approach which significantly improves the hydrogen sensing capability of zinc oxide by applying a bias voltage to ZnO nanorods as the sensing elements. Zinc oxide in the form of aligned nanorods was first synthesized on an Au-coated Si(111) substrate using a facile method via the galvanic-assisted chemical process. The sensing performance of the zinc oxide nanorods was investigated in response to the applied biasing voltage. It was found that the sensitivity, response time and detection limit of the ZnO sensing elements were dramatically improved with increasing bias voltage. A 100% increment in sensing response was achieved for the detection of 2000 ppm hydrogen gas when the bias voltage was increased from −2 to −6 V with 70% reduction in response and recovery times. This remarkable sensing performance is attributed to the reaction of hydrogen with chemisorbed oxygen ions on the surface of the ZnO nanorods that served as the electron donors to increase the sensor conductance. Higher reverse bias voltages sweep the electrons faster across the electrodes. This shortened the response time and, at the same time, depleted the electrons in the sensor elements and weakens oxygen adsorption. The oxygen ions could then be readily removed by hydrogen, leading to a higher sensitivity of the sensors. This, therefore, envisages a way for high-speed hydrogen gas sensing with high detection sensitivities.
topic zno
hydrogen sensor
chemical
bias voltage
url https://royalsocietypublishing.org/doi/pdf/10.1098/rsos.172372
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AT nurubaidahsaidin hydrogensensingenhancementofzincoxidenanorodsviavoltagebiasing
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