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Investigating the Influence of Temperature on the Kaolinite-Base Synthesis of Zeolite and Urease Immobilization for the Potential Fabrication of Electrochemical Urea Biosensors

Temperature-dependent zeolite synthesis has revealed a unique surface morphology, surface area and pore size which influence the immobilization of urease on gold electrode supports for biosensor fabrication. XRD characterization has identified zeolite X (Na) at all crystallization temperatures teste...

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Autores principales: Anderson, David Ebo, Balapangu, Srinivasan, Fleischer, Heidimarie N. A., Viade, Ruth A., Krampa, Francis D., Kanyong, Prosper, Awandare, Gordon A., Tiburu, Elvis K.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5579837/
https://www.ncbi.nlm.nih.gov/pubmed/28786961
http://dx.doi.org/10.3390/s17081831
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author Anderson, David Ebo
Balapangu, Srinivasan
Fleischer, Heidimarie N. A.
Viade, Ruth A.
Krampa, Francis D.
Kanyong, Prosper
Awandare, Gordon A.
Tiburu, Elvis K.
author_facet Anderson, David Ebo
Balapangu, Srinivasan
Fleischer, Heidimarie N. A.
Viade, Ruth A.
Krampa, Francis D.
Kanyong, Prosper
Awandare, Gordon A.
Tiburu, Elvis K.
author_sort Anderson, David Ebo
collection PubMed
description Temperature-dependent zeolite synthesis has revealed a unique surface morphology, surface area and pore size which influence the immobilization of urease on gold electrode supports for biosensor fabrication. XRD characterization has identified zeolite X (Na) at all crystallization temperatures tested. However, N(2) adsorption and desorption results showed a pore size and pore volume of zeolite X (Na) 60 °C, zeolite X (Na) 70 °C and zeolite X (Na) 90 °C to range from 1.92 nm to 2.45 nm and 0.012 cm(3)/g to 0.061 cm(3)/g, respectively, with no significant differences. The specific surface area of zeolite X (Na) at 60, 70 and 90 °C was 64 m(2)/g, 67 m(2)/g and 113 m(2)/g, respectively. The pore size, specific surface area and pore volumes of zeolite X (Na) 80 °C and zeolite X (Na) 100 °C were dramatically increased to 4.21 nm, 295 m(2)/g, 0.762 cm(3)/g and 4.92 nm, 389 m(2)/g, 0.837 cm(3)/g, in that order. The analytical performance of adsorbed urease on zeolite X (Na) surface was also investigated using cyclic voltammetry measurements, and the results showed distinct cathodic and anodic peaks by zeolite X (Na) 80 °C and zeolite X (Na) 100 °C. These zeolites’ molar conductance was measured as a function of urea concentration and gave an average polynomial regression fit of 0.948. The findings in this study suggest that certain physicochemical properties, such as crystallization temperature and pH, are critical parameters for improving the morphological properties of zeolites synthesized from natural sources for various biomedical applications.
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spelling pubmed-55798372017-09-06 Investigating the Influence of Temperature on the Kaolinite-Base Synthesis of Zeolite and Urease Immobilization for the Potential Fabrication of Electrochemical Urea Biosensors Anderson, David Ebo Balapangu, Srinivasan Fleischer, Heidimarie N. A. Viade, Ruth A. Krampa, Francis D. Kanyong, Prosper Awandare, Gordon A. Tiburu, Elvis K. Sensors (Basel) Article Temperature-dependent zeolite synthesis has revealed a unique surface morphology, surface area and pore size which influence the immobilization of urease on gold electrode supports for biosensor fabrication. XRD characterization has identified zeolite X (Na) at all crystallization temperatures tested. However, N(2) adsorption and desorption results showed a pore size and pore volume of zeolite X (Na) 60 °C, zeolite X (Na) 70 °C and zeolite X (Na) 90 °C to range from 1.92 nm to 2.45 nm and 0.012 cm(3)/g to 0.061 cm(3)/g, respectively, with no significant differences. The specific surface area of zeolite X (Na) at 60, 70 and 90 °C was 64 m(2)/g, 67 m(2)/g and 113 m(2)/g, respectively. The pore size, specific surface area and pore volumes of zeolite X (Na) 80 °C and zeolite X (Na) 100 °C were dramatically increased to 4.21 nm, 295 m(2)/g, 0.762 cm(3)/g and 4.92 nm, 389 m(2)/g, 0.837 cm(3)/g, in that order. The analytical performance of adsorbed urease on zeolite X (Na) surface was also investigated using cyclic voltammetry measurements, and the results showed distinct cathodic and anodic peaks by zeolite X (Na) 80 °C and zeolite X (Na) 100 °C. These zeolites’ molar conductance was measured as a function of urea concentration and gave an average polynomial regression fit of 0.948. The findings in this study suggest that certain physicochemical properties, such as crystallization temperature and pH, are critical parameters for improving the morphological properties of zeolites synthesized from natural sources for various biomedical applications. MDPI 2017-08-08 /pmc/articles/PMC5579837/ /pubmed/28786961 http://dx.doi.org/10.3390/s17081831 Text en © 2017 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Anderson, David Ebo
Balapangu, Srinivasan
Fleischer, Heidimarie N. A.
Viade, Ruth A.
Krampa, Francis D.
Kanyong, Prosper
Awandare, Gordon A.
Tiburu, Elvis K.
Investigating the Influence of Temperature on the Kaolinite-Base Synthesis of Zeolite and Urease Immobilization for the Potential Fabrication of Electrochemical Urea Biosensors
title Investigating the Influence of Temperature on the Kaolinite-Base Synthesis of Zeolite and Urease Immobilization for the Potential Fabrication of Electrochemical Urea Biosensors
title_full Investigating the Influence of Temperature on the Kaolinite-Base Synthesis of Zeolite and Urease Immobilization for the Potential Fabrication of Electrochemical Urea Biosensors
title_fullStr Investigating the Influence of Temperature on the Kaolinite-Base Synthesis of Zeolite and Urease Immobilization for the Potential Fabrication of Electrochemical Urea Biosensors
title_full_unstemmed Investigating the Influence of Temperature on the Kaolinite-Base Synthesis of Zeolite and Urease Immobilization for the Potential Fabrication of Electrochemical Urea Biosensors
title_short Investigating the Influence of Temperature on the Kaolinite-Base Synthesis of Zeolite and Urease Immobilization for the Potential Fabrication of Electrochemical Urea Biosensors
title_sort investigating the influence of temperature on the kaolinite-base synthesis of zeolite and urease immobilization for the potential fabrication of electrochemical urea biosensors
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5579837/
https://www.ncbi.nlm.nih.gov/pubmed/28786961
http://dx.doi.org/10.3390/s17081831
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