Grown of highly porous ZnO-nanoparticles by pulsed laser ablation in liquid technique for sensing applications

Pulsed laser ablation technique in deionized water with low laser fluency has been explored to prepare uniform dispersed porous ZnO nanoparticles for sensing applications. Surface morphology, particle size, porous structure, roughness, elemental distribution, and chemical bonding of the synthesized...

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Main Authors: Islam, Shumaila, Bakhtiar, Hazri, Abbas, Khaldoon N., Riaz, Saira, Naseem, Shahzad, Johari, Abdul Rahman
Format: Article
Published: Springer International Publishing 2019
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Online Access:http://eprints.utm.my/id/eprint/89022/
http://dx.doi.org/10.1007/s41779-018-0288-y
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Institution: Universiti Teknologi Malaysia
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spelling my.utm.890222021-01-26T08:41:30Z http://eprints.utm.my/id/eprint/89022/ Grown of highly porous ZnO-nanoparticles by pulsed laser ablation in liquid technique for sensing applications Islam, Shumaila Bakhtiar, Hazri Abbas, Khaldoon N. Riaz, Saira Naseem, Shahzad Johari, Abdul Rahman QC Physics Pulsed laser ablation technique in deionized water with low laser fluency has been explored to prepare uniform dispersed porous ZnO nanoparticles for sensing applications. Surface morphology, particle size, porous structure, roughness, elemental distribution, and chemical bonding of the synthesized ZnO are analyzed by TEM, FESEM, AFM, EDX, and FTIR spectroscopy, respectively. Sensing behavior is observed by UV–Vis absorption measurements. TEM and FESEM analysis show that the prepared ZnO-coated film has homogeneous, dispersed, highly porous, and crack-free surface; the average particle size are observed ~ 24.72 ± 2.97 nm. The porous structure is responsible for appropriate sensing behavior. Low roughness value ~ 1.52 nm which is analyzed by AFM is advantageous for sensing behavior. EDX spectrum and elements mapping clearly show the uniform Zn and O distribution. XRD analysis confirms the hexagonal wurtzite structure of ZnO. FTIR reveals the Zn and O chemical bonding successfully. UV-Visible analysis exhibits that the prepared ZnO matrix has good incorporation with multi-dyes solutions at pH values 10–12 with significant changes in color behavior. The highest pKa value ~ 9.77 at a wavelength of 598.28 nm was calculated for multi-dyes immobilized ZnO matrix. So, it can be concluded that prepared ZnO nanostructures are potential candidates for sensing application. Springer International Publishing 2019-09 Article PeerReviewed Islam, Shumaila and Bakhtiar, Hazri and Abbas, Khaldoon N. and Riaz, Saira and Naseem, Shahzad and Johari, Abdul Rahman (2019) Grown of highly porous ZnO-nanoparticles by pulsed laser ablation in liquid technique for sensing applications. Journal of the Australian Ceramic Society, 55 (3). pp. 765-771. ISSN 2510-1560 http://dx.doi.org/10.1007/s41779-018-0288-y
institution Universiti Teknologi Malaysia
building UTM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Teknologi Malaysia
content_source UTM Institutional Repository
url_provider http://eprints.utm.my/
topic QC Physics
spellingShingle QC Physics
Islam, Shumaila
Bakhtiar, Hazri
Abbas, Khaldoon N.
Riaz, Saira
Naseem, Shahzad
Johari, Abdul Rahman
Grown of highly porous ZnO-nanoparticles by pulsed laser ablation in liquid technique for sensing applications
description Pulsed laser ablation technique in deionized water with low laser fluency has been explored to prepare uniform dispersed porous ZnO nanoparticles for sensing applications. Surface morphology, particle size, porous structure, roughness, elemental distribution, and chemical bonding of the synthesized ZnO are analyzed by TEM, FESEM, AFM, EDX, and FTIR spectroscopy, respectively. Sensing behavior is observed by UV–Vis absorption measurements. TEM and FESEM analysis show that the prepared ZnO-coated film has homogeneous, dispersed, highly porous, and crack-free surface; the average particle size are observed ~ 24.72 ± 2.97 nm. The porous structure is responsible for appropriate sensing behavior. Low roughness value ~ 1.52 nm which is analyzed by AFM is advantageous for sensing behavior. EDX spectrum and elements mapping clearly show the uniform Zn and O distribution. XRD analysis confirms the hexagonal wurtzite structure of ZnO. FTIR reveals the Zn and O chemical bonding successfully. UV-Visible analysis exhibits that the prepared ZnO matrix has good incorporation with multi-dyes solutions at pH values 10–12 with significant changes in color behavior. The highest pKa value ~ 9.77 at a wavelength of 598.28 nm was calculated for multi-dyes immobilized ZnO matrix. So, it can be concluded that prepared ZnO nanostructures are potential candidates for sensing application.
format Article
author Islam, Shumaila
Bakhtiar, Hazri
Abbas, Khaldoon N.
Riaz, Saira
Naseem, Shahzad
Johari, Abdul Rahman
author_facet Islam, Shumaila
Bakhtiar, Hazri
Abbas, Khaldoon N.
Riaz, Saira
Naseem, Shahzad
Johari, Abdul Rahman
author_sort Islam, Shumaila
title Grown of highly porous ZnO-nanoparticles by pulsed laser ablation in liquid technique for sensing applications
title_short Grown of highly porous ZnO-nanoparticles by pulsed laser ablation in liquid technique for sensing applications
title_full Grown of highly porous ZnO-nanoparticles by pulsed laser ablation in liquid technique for sensing applications
title_fullStr Grown of highly porous ZnO-nanoparticles by pulsed laser ablation in liquid technique for sensing applications
title_full_unstemmed Grown of highly porous ZnO-nanoparticles by pulsed laser ablation in liquid technique for sensing applications
title_sort grown of highly porous zno-nanoparticles by pulsed laser ablation in liquid technique for sensing applications
publisher Springer International Publishing
publishDate 2019
url http://eprints.utm.my/id/eprint/89022/
http://dx.doi.org/10.1007/s41779-018-0288-y
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