Effect of homogeneous acidic catalyst on mechanical strength of trishydrazone hydrogels: Characterization and optimization studies

Characterization utilizing X-ray photoelectron spectroscopy (XPS) revealed the presence of all the expected elements found in trishydrazone hydrogels (3). Morphological study on confocal laser scanning microscopy (CLSM) and atomic force microscopy (AFM) revealed the branching and bundling of fibers...

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Main Authors: Nor Hakimin Abdullah, Wan Azelee Wan Abu Bakar, Rafaqat Hussain, Mohd Bakri Bakar, Jan H.van Esch
Format: Indexed Article
Published: Saudi Chemical Society 2016
Online Access:http://discol.umk.edu.my/id/eprint/7555/
http://dx.doi.org/10.1016/j.arabjc.2016.01.001
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spelling my.umk.eprints.75552022-05-23T10:01:06Z http://discol.umk.edu.my/id/eprint/7555/ Effect of homogeneous acidic catalyst on mechanical strength of trishydrazone hydrogels: Characterization and optimization studies Nor Hakimin Abdullah Wan Azelee Wan Abu Bakar Rafaqat Hussain Mohd Bakri Bakar Jan H.van Esch Characterization utilizing X-ray photoelectron spectroscopy (XPS) revealed the presence of all the expected elements found in trishydrazone hydrogels (3). Morphological study on confocal laser scanning microscopy (CLSM) and atomic force microscopy (AFM) revealed the branching and bundling of fibers that led hydrogels network as well as the presence of cross-linked nanofibrillar network structure. A three-factor three-level Box Behnken design was implemented to study the concurrent effects of three main variables (concentration of precursor; 10–20 mM, pH; 3–7, and concentration of buffer; 50–150 mM) on mechanical strength of hydrogels. Analysis of variance (ANOVA) was conducted to investigate the potential interactive and quadratic effects between these variables and revealed that interaction between the pH value and the concentration of buffer (X2X3) showed a significant effect on the response since the significance of the design model (p-value) was set at <0.05. Experimental results showed that acid catalyst at pH 5 had a significant effect on mechanical properties of hydrogels compared to uncatalyzed condition at pH 7 where the mechanical strength at pH 5 is almost 10 times higher than pH 7. The processing conditions that contributed to an optimum hydrogels setting were found at concentration of precursor = 20 mM, pH = 5 and concentration of buffer = 100 mM. Saudi Chemical Society 2016-01-01 Indexed Article NonPeerReviewed Nor Hakimin Abdullah and Wan Azelee Wan Abu Bakar and Rafaqat Hussain and Mohd Bakri Bakar and Jan H.van Esch (2016) Effect of homogeneous acidic catalyst on mechanical strength of trishydrazone hydrogels: Characterization and optimization studies. Arabian Journal of Chemistry. pp. 1-10. ISSN 1878-5352 http://dx.doi.org/10.1016/j.arabjc.2016.01.001
institution Universiti Malaysia Kelantan
building Perpustakaan Universiti Malaysia Kelantan
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Malaysia Kelantan
content_source UMK Institutional Repository
url_provider http://umkeprints.umk.edu.my/
description Characterization utilizing X-ray photoelectron spectroscopy (XPS) revealed the presence of all the expected elements found in trishydrazone hydrogels (3). Morphological study on confocal laser scanning microscopy (CLSM) and atomic force microscopy (AFM) revealed the branching and bundling of fibers that led hydrogels network as well as the presence of cross-linked nanofibrillar network structure. A three-factor three-level Box Behnken design was implemented to study the concurrent effects of three main variables (concentration of precursor; 10–20 mM, pH; 3–7, and concentration of buffer; 50–150 mM) on mechanical strength of hydrogels. Analysis of variance (ANOVA) was conducted to investigate the potential interactive and quadratic effects between these variables and revealed that interaction between the pH value and the concentration of buffer (X2X3) showed a significant effect on the response since the significance of the design model (p-value) was set at <0.05. Experimental results showed that acid catalyst at pH 5 had a significant effect on mechanical properties of hydrogels compared to uncatalyzed condition at pH 7 where the mechanical strength at pH 5 is almost 10 times higher than pH 7. The processing conditions that contributed to an optimum hydrogels setting were found at concentration of precursor = 20 mM, pH = 5 and concentration of buffer = 100 mM.
format Indexed Article
author Nor Hakimin Abdullah
Wan Azelee Wan Abu Bakar
Rafaqat Hussain
Mohd Bakri Bakar
Jan H.van Esch
spellingShingle Nor Hakimin Abdullah
Wan Azelee Wan Abu Bakar
Rafaqat Hussain
Mohd Bakri Bakar
Jan H.van Esch
Effect of homogeneous acidic catalyst on mechanical strength of trishydrazone hydrogels: Characterization and optimization studies
author_facet Nor Hakimin Abdullah
Wan Azelee Wan Abu Bakar
Rafaqat Hussain
Mohd Bakri Bakar
Jan H.van Esch
author_sort Nor Hakimin Abdullah
title Effect of homogeneous acidic catalyst on mechanical strength of trishydrazone hydrogels: Characterization and optimization studies
title_short Effect of homogeneous acidic catalyst on mechanical strength of trishydrazone hydrogels: Characterization and optimization studies
title_full Effect of homogeneous acidic catalyst on mechanical strength of trishydrazone hydrogels: Characterization and optimization studies
title_fullStr Effect of homogeneous acidic catalyst on mechanical strength of trishydrazone hydrogels: Characterization and optimization studies
title_full_unstemmed Effect of homogeneous acidic catalyst on mechanical strength of trishydrazone hydrogels: Characterization and optimization studies
title_sort effect of homogeneous acidic catalyst on mechanical strength of trishydrazone hydrogels: characterization and optimization studies
publisher Saudi Chemical Society
publishDate 2016
url http://discol.umk.edu.my/id/eprint/7555/
http://dx.doi.org/10.1016/j.arabjc.2016.01.001
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score 13.160551