Modification of Microelectrode Arrays with High Surface Area Dendritic Platinum 3D Structures: Enhanced Sensitivity for Oxygen Detection in Ionic Liquids

Electrochemical gas sensors are often used for identifying and quantifying redox-active analyte gases in the atmosphere. However, for amperometric sensors, the current signal is usually dependent on the electroactive surface area, which can become small when using microelectrodes and miniaturized de...

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Main Authors: Ghulam Hussain, Anthony P. O’Mullane, Debbie S. Silvester
Format: Article
Language:English
Published: MDPI AG 2018-09-01
Series:Nanomaterials
Subjects:
Online Access:http://www.mdpi.com/2079-4991/8/9/735
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spelling doaj-426ec06121174df7a0dba1814e141a7e2020-11-25T00:50:08ZengMDPI AGNanomaterials2079-49912018-09-018973510.3390/nano8090735nano8090735Modification of Microelectrode Arrays with High Surface Area Dendritic Platinum 3D Structures: Enhanced Sensitivity for Oxygen Detection in Ionic LiquidsGhulam Hussain0Anthony P. O’Mullane1Debbie S. Silvester2Curtin Institute for Functional Molecules and Interfaces, School of Molecular and Life Sciences, Curtin University, GPO Box U1987, Perth 6845, AustraliaSchool of Chemistry, Physics and Mechanical Engineering, Queensland University of Technology (QUT), Brisbane, Queensland 4001, AustraliaCurtin Institute for Functional Molecules and Interfaces, School of Molecular and Life Sciences, Curtin University, GPO Box U1987, Perth 6845, AustraliaElectrochemical gas sensors are often used for identifying and quantifying redox-active analyte gases in the atmosphere. However, for amperometric sensors, the current signal is usually dependent on the electroactive surface area, which can become small when using microelectrodes and miniaturized devices. Microarray thin-film electrodes (MATFEs) are commercially available, low-cost devices that give enhanced current densities compared to mm-sized electrodes, but still give low current responses (e.g., less than one nanoamp), when detecting low concentrations of gases. To overcome this, we have modified the surface of the MATFEs by depositing platinum into the recessed holes to create arrays of 3D structures with high surface areas. Dendritic structures have been formed using an additive, lead acetate (Pb(OAc)2) into the plating solution. One-step and two-step depositions were explored, with a total deposition time of 300 s or 420 s. The modified MATFEs were then studied for their behavior towards oxygen reduction in the room temperature ionic liquid (RTIL) [N8,2,2,2][NTf2]. Significantly enhanced currents for oxygen were observed, ranging from 9 to 16 times the current of the unmodified MATFE. The highest sensitivity was obtained using a two-step deposition with a total time of 420 s, and both steps containing Pb(OAc)2. This work shows that commercially-available microelectrodes can be favorably modified to give significantly enhanced analytical performances.http://www.mdpi.com/2079-4991/8/9/7353D nanostructureselectrodepositionplatinumoxygen sensinggas detectionmicroarraysroom temperature ionic liquids
collection DOAJ
language English
format Article
sources DOAJ
author Ghulam Hussain
Anthony P. O’Mullane
Debbie S. Silvester
spellingShingle Ghulam Hussain
Anthony P. O’Mullane
Debbie S. Silvester
Modification of Microelectrode Arrays with High Surface Area Dendritic Platinum 3D Structures: Enhanced Sensitivity for Oxygen Detection in Ionic Liquids
Nanomaterials
3D nanostructures
electrodeposition
platinum
oxygen sensing
gas detection
microarrays
room temperature ionic liquids
author_facet Ghulam Hussain
Anthony P. O’Mullane
Debbie S. Silvester
author_sort Ghulam Hussain
title Modification of Microelectrode Arrays with High Surface Area Dendritic Platinum 3D Structures: Enhanced Sensitivity for Oxygen Detection in Ionic Liquids
title_short Modification of Microelectrode Arrays with High Surface Area Dendritic Platinum 3D Structures: Enhanced Sensitivity for Oxygen Detection in Ionic Liquids
title_full Modification of Microelectrode Arrays with High Surface Area Dendritic Platinum 3D Structures: Enhanced Sensitivity for Oxygen Detection in Ionic Liquids
title_fullStr Modification of Microelectrode Arrays with High Surface Area Dendritic Platinum 3D Structures: Enhanced Sensitivity for Oxygen Detection in Ionic Liquids
title_full_unstemmed Modification of Microelectrode Arrays with High Surface Area Dendritic Platinum 3D Structures: Enhanced Sensitivity for Oxygen Detection in Ionic Liquids
title_sort modification of microelectrode arrays with high surface area dendritic platinum 3d structures: enhanced sensitivity for oxygen detection in ionic liquids
publisher MDPI AG
series Nanomaterials
issn 2079-4991
publishDate 2018-09-01
description Electrochemical gas sensors are often used for identifying and quantifying redox-active analyte gases in the atmosphere. However, for amperometric sensors, the current signal is usually dependent on the electroactive surface area, which can become small when using microelectrodes and miniaturized devices. Microarray thin-film electrodes (MATFEs) are commercially available, low-cost devices that give enhanced current densities compared to mm-sized electrodes, but still give low current responses (e.g., less than one nanoamp), when detecting low concentrations of gases. To overcome this, we have modified the surface of the MATFEs by depositing platinum into the recessed holes to create arrays of 3D structures with high surface areas. Dendritic structures have been formed using an additive, lead acetate (Pb(OAc)2) into the plating solution. One-step and two-step depositions were explored, with a total deposition time of 300 s or 420 s. The modified MATFEs were then studied for their behavior towards oxygen reduction in the room temperature ionic liquid (RTIL) [N8,2,2,2][NTf2]. Significantly enhanced currents for oxygen were observed, ranging from 9 to 16 times the current of the unmodified MATFE. The highest sensitivity was obtained using a two-step deposition with a total time of 420 s, and both steps containing Pb(OAc)2. This work shows that commercially-available microelectrodes can be favorably modified to give significantly enhanced analytical performances.
topic 3D nanostructures
electrodeposition
platinum
oxygen sensing
gas detection
microarrays
room temperature ionic liquids
url http://www.mdpi.com/2079-4991/8/9/735
work_keys_str_mv AT ghulamhussain modificationofmicroelectrodearrayswithhighsurfaceareadendriticplatinum3dstructuresenhancedsensitivityforoxygendetectioninionicliquids
AT anthonypomullane modificationofmicroelectrodearrayswithhighsurfaceareadendriticplatinum3dstructuresenhancedsensitivityforoxygendetectioninionicliquids
AT debbiessilvester modificationofmicroelectrodearrayswithhighsurfaceareadendriticplatinum3dstructuresenhancedsensitivityforoxygendetectioninionicliquids
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