Adsorption isotherm and surface analysis for the carbonate formation on nano coral-shaped iron(Iii) oxide

The α-Fe2O3 was synthesized using the hydrolysis method to obtain the nano coral-shaped morphology. The adsorption isotherm and surface analysis upon CO2 adsorption were identified. The adsorption capacity for nano coral-shaped α-Fe2O3 was measured at 8.66 cm3/g (17.00 mg/g). Experimental data from...

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Main Authors: Azizul Hakim Lahuri,, Mohd Ambar Yarmo,, Norazzizi Nordin,, Norliza Dzakaria,, Hwong, Adeline Ing Ing, Sophia Jelina Stanley Kuda,
Format: Article
Language:English
Published: Penerbit Universiti Kebangsaan Malaysia 2023
Online Access:http://journalarticle.ukm.my/21539/1/S%2010.pdf
http://journalarticle.ukm.my/21539/
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spelling my-ukm.journal.215392023-05-09T02:06:46Z http://journalarticle.ukm.my/21539/ Adsorption isotherm and surface analysis for the carbonate formation on nano coral-shaped iron(Iii) oxide Azizul Hakim Lahuri, Mohd Ambar Yarmo, Norazzizi Nordin, Norliza Dzakaria, Hwong, Adeline Ing Ing Sophia Jelina Stanley Kuda, The α-Fe2O3 was synthesized using the hydrolysis method to obtain the nano coral-shaped morphology. The adsorption isotherm and surface analysis upon CO2 adsorption were identified. The adsorption capacity for nano coral-shaped α-Fe2O3 was measured at 8.66 cm3/g (17.00 mg/g). Experimental data from CO2 adsorption isotherm at 25 ℃ best fits with the Freundlich isotherm model which implies the adsorption process is favorable and the multilayer adsorption on the heterogeneous surface. A decrease in the α-Fe2O3 crystallite peaks in the X-ray diffractogram after the CO2 adsorption was associated with the carbonate complexes species formation. IR spectra indicate higher intensities over the CO2 exposure time of 4, 12 and 24 h, especially at absorption bands 1041 and 1627 cm-1 that corresponded to C-O and asymmetry O-C-O stretches, respectively, for carbonate. The morphology of the carbonate formation on nano coral-shaped α-Fe2O3 over the CO2 exposure time was analyzed using FESEM-EDX. Although the carbonate formation was not distinct, the increment in the C element also confirmed the capability of the α-Fe2O3 in adsorbing CO2 for a long adsorption time of 24 h. Penerbit Universiti Kebangsaan Malaysia 2023 Article PeerReviewed application/pdf en http://journalarticle.ukm.my/21539/1/S%2010.pdf Azizul Hakim Lahuri, and Mohd Ambar Yarmo, and Norazzizi Nordin, and Norliza Dzakaria, and Hwong, Adeline Ing Ing and Sophia Jelina Stanley Kuda, (2023) Adsorption isotherm and surface analysis for the carbonate formation on nano coral-shaped iron(Iii) oxide. Sains Malaysiana, 52 (1). pp. 129-138. ISSN 0126-6039 http://www.ukm.my/jsm/index.html
institution Universiti Kebangsaan Malaysia
building Tun Sri Lanang Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Kebangsaan Malaysia
content_source UKM Journal Article Repository
url_provider http://journalarticle.ukm.my/
language English
description The α-Fe2O3 was synthesized using the hydrolysis method to obtain the nano coral-shaped morphology. The adsorption isotherm and surface analysis upon CO2 adsorption were identified. The adsorption capacity for nano coral-shaped α-Fe2O3 was measured at 8.66 cm3/g (17.00 mg/g). Experimental data from CO2 adsorption isotherm at 25 ℃ best fits with the Freundlich isotherm model which implies the adsorption process is favorable and the multilayer adsorption on the heterogeneous surface. A decrease in the α-Fe2O3 crystallite peaks in the X-ray diffractogram after the CO2 adsorption was associated with the carbonate complexes species formation. IR spectra indicate higher intensities over the CO2 exposure time of 4, 12 and 24 h, especially at absorption bands 1041 and 1627 cm-1 that corresponded to C-O and asymmetry O-C-O stretches, respectively, for carbonate. The morphology of the carbonate formation on nano coral-shaped α-Fe2O3 over the CO2 exposure time was analyzed using FESEM-EDX. Although the carbonate formation was not distinct, the increment in the C element also confirmed the capability of the α-Fe2O3 in adsorbing CO2 for a long adsorption time of 24 h.
format Article
author Azizul Hakim Lahuri,
Mohd Ambar Yarmo,
Norazzizi Nordin,
Norliza Dzakaria,
Hwong, Adeline Ing Ing
Sophia Jelina Stanley Kuda,
spellingShingle Azizul Hakim Lahuri,
Mohd Ambar Yarmo,
Norazzizi Nordin,
Norliza Dzakaria,
Hwong, Adeline Ing Ing
Sophia Jelina Stanley Kuda,
Adsorption isotherm and surface analysis for the carbonate formation on nano coral-shaped iron(Iii) oxide
author_facet Azizul Hakim Lahuri,
Mohd Ambar Yarmo,
Norazzizi Nordin,
Norliza Dzakaria,
Hwong, Adeline Ing Ing
Sophia Jelina Stanley Kuda,
author_sort Azizul Hakim Lahuri,
title Adsorption isotherm and surface analysis for the carbonate formation on nano coral-shaped iron(Iii) oxide
title_short Adsorption isotherm and surface analysis for the carbonate formation on nano coral-shaped iron(Iii) oxide
title_full Adsorption isotherm and surface analysis for the carbonate formation on nano coral-shaped iron(Iii) oxide
title_fullStr Adsorption isotherm and surface analysis for the carbonate formation on nano coral-shaped iron(Iii) oxide
title_full_unstemmed Adsorption isotherm and surface analysis for the carbonate formation on nano coral-shaped iron(Iii) oxide
title_sort adsorption isotherm and surface analysis for the carbonate formation on nano coral-shaped iron(iii) oxide
publisher Penerbit Universiti Kebangsaan Malaysia
publishDate 2023
url http://journalarticle.ukm.my/21539/1/S%2010.pdf
http://journalarticle.ukm.my/21539/
http://www.ukm.my/jsm/index.html
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score 13.211869