Lower desorption temperature in CO2 capture using various magnesium oxide loading on iron(III) oxide by ultrasonic-assisted synthesis: the adsorption-desorption and isotherm studies

This study introduces a novel approach to CO2 capture using the ultrasonic-assisted wet impregnation technique with various MgO loadings on Fe2O3. This method allows for enhanced dispersion of MgO particles, leading to improved adsorption and desorption characteristics. The characterization was cond...

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Main Authors: Lahuri, Azizul Hakim, Jaafar, Nur Farhana, Nordin, Norazzizi, Dzakaria, Norliza, Mohd Yusof, Syawal, Samidin, Salma, Sulaiman, Syazreen Nadia, Marliza, Tengku Sharifah
Format: Article
Language:English
Published: Taylor and Francis Ltd. 2024
Online Access:http://psasir.upm.edu.my/id/eprint/116532/
http://psasir.upm.edu.my/id/eprint/116532/1/116532.pdf
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author Lahuri, Azizul Hakim
Jaafar, Nur Farhana
Nordin, Norazzizi
Dzakaria, Norliza
Mohd Yusof, Syawal
Samidin, Salma
Sulaiman, Syazreen Nadia
Marliza, Tengku Sharifah
author_facet Lahuri, Azizul Hakim
Jaafar, Nur Farhana
Nordin, Norazzizi
Dzakaria, Norliza
Mohd Yusof, Syawal
Samidin, Salma
Sulaiman, Syazreen Nadia
Marliza, Tengku Sharifah
author_sort Lahuri, Azizul Hakim
building UPM Institutional Repository
collection Online Access
description This study introduces a novel approach to CO2 capture using the ultrasonic-assisted wet impregnation technique with various MgO loadings on Fe2O3. This method allows for enhanced dispersion of MgO particles, leading to improved adsorption and desorption characteristics. The characterization was conducted using XRD, N2 adsorption-desorption isotherms and FESEM. CO2 adsorption isotherm at 25 °C and TPD-CO2 were applied to obtain the CO2 capture activities. The linearized form of adsorption isotherm model was fitted to the experimental data from the CO2 adsorption isotherm at 25 °C. The most effective adsorbent is 20MgO/Fe2O3 with 20 wt% dopant loading which has an adsorption capacity of 3.83 and 56.99 mg/g for physisorption and chemisorption, respectively. It has the highest pore size distribution at 80–150 nm among MgO/Fe2O3 series adsorbents. This discrepancy is ascribed to a good distribution of the MgO particle on the Fe2O3 surfaces and the pores generated on the MgO surfaces. XRD revealed a greater peak shift to a higher angle of 2θ for the (104) plane starting from 20MgO/Fe2O3. This shows that the Fe3+ ion in the Fe2O3 structure has been successfully replaced by a smaller ion radius of Mg2+ and the ion was successfully incorporated into the Fe2O3 as a substitutional atom. The Freundlich isotherm model fit the best with the experimental data suggesting that the heterogeneity surface facilitated a successful multilayer adsorption process. The novelty of this work lies in the ability to enhance CO2 adsorption efficiency while lowering the desorption temperature, offering a practical CO2 capture applications.
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institution Universiti Putra Malaysia
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publisher Taylor and Francis Ltd.
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spelling upm-1165322025-04-10T06:26:44Z http://psasir.upm.edu.my/id/eprint/116532/ Lower desorption temperature in CO2 capture using various magnesium oxide loading on iron(III) oxide by ultrasonic-assisted synthesis: the adsorption-desorption and isotherm studies Lahuri, Azizul Hakim Jaafar, Nur Farhana Nordin, Norazzizi Dzakaria, Norliza Mohd Yusof, Syawal Samidin, Salma Sulaiman, Syazreen Nadia Marliza, Tengku Sharifah This study introduces a novel approach to CO2 capture using the ultrasonic-assisted wet impregnation technique with various MgO loadings on Fe2O3. This method allows for enhanced dispersion of MgO particles, leading to improved adsorption and desorption characteristics. The characterization was conducted using XRD, N2 adsorption-desorption isotherms and FESEM. CO2 adsorption isotherm at 25 °C and TPD-CO2 were applied to obtain the CO2 capture activities. The linearized form of adsorption isotherm model was fitted to the experimental data from the CO2 adsorption isotherm at 25 °C. The most effective adsorbent is 20MgO/Fe2O3 with 20 wt% dopant loading which has an adsorption capacity of 3.83 and 56.99 mg/g for physisorption and chemisorption, respectively. It has the highest pore size distribution at 80–150 nm among MgO/Fe2O3 series adsorbents. This discrepancy is ascribed to a good distribution of the MgO particle on the Fe2O3 surfaces and the pores generated on the MgO surfaces. XRD revealed a greater peak shift to a higher angle of 2θ for the (104) plane starting from 20MgO/Fe2O3. This shows that the Fe3+ ion in the Fe2O3 structure has been successfully replaced by a smaller ion radius of Mg2+ and the ion was successfully incorporated into the Fe2O3 as a substitutional atom. The Freundlich isotherm model fit the best with the experimental data suggesting that the heterogeneity surface facilitated a successful multilayer adsorption process. The novelty of this work lies in the ability to enhance CO2 adsorption efficiency while lowering the desorption temperature, offering a practical CO2 capture applications. Taylor and Francis Ltd. 2024-12 Article PeerReviewed text en http://psasir.upm.edu.my/id/eprint/116532/1/116532.pdf Lahuri, Azizul Hakim and Jaafar, Nur Farhana and Nordin, Norazzizi and Dzakaria, Norliza and Mohd Yusof, Syawal and Samidin, Salma and Sulaiman, Syazreen Nadia and Marliza, Tengku Sharifah (2024) Lower desorption temperature in CO2 capture using various magnesium oxide loading on iron(III) oxide by ultrasonic-assisted synthesis: the adsorption-desorption and isotherm studies. Chemical Engineering Communications, 212 (6). pp. 876-893. ISSN 0098-6445; eISSN: 1563-5201 https://www.tandfonline.com/doi/full/10.1080/00986445.2024.2438155 10.1080/00986445.2024.2438155
spellingShingle Lahuri, Azizul Hakim
Jaafar, Nur Farhana
Nordin, Norazzizi
Dzakaria, Norliza
Mohd Yusof, Syawal
Samidin, Salma
Sulaiman, Syazreen Nadia
Marliza, Tengku Sharifah
Lower desorption temperature in CO2 capture using various magnesium oxide loading on iron(III) oxide by ultrasonic-assisted synthesis: the adsorption-desorption and isotherm studies
title Lower desorption temperature in CO2 capture using various magnesium oxide loading on iron(III) oxide by ultrasonic-assisted synthesis: the adsorption-desorption and isotherm studies
title_full Lower desorption temperature in CO2 capture using various magnesium oxide loading on iron(III) oxide by ultrasonic-assisted synthesis: the adsorption-desorption and isotherm studies
title_fullStr Lower desorption temperature in CO2 capture using various magnesium oxide loading on iron(III) oxide by ultrasonic-assisted synthesis: the adsorption-desorption and isotherm studies
title_full_unstemmed Lower desorption temperature in CO2 capture using various magnesium oxide loading on iron(III) oxide by ultrasonic-assisted synthesis: the adsorption-desorption and isotherm studies
title_short Lower desorption temperature in CO2 capture using various magnesium oxide loading on iron(III) oxide by ultrasonic-assisted synthesis: the adsorption-desorption and isotherm studies
title_sort lower desorption temperature in co2 capture using various magnesium oxide loading on iron(iii) oxide by ultrasonic-assisted synthesis: the adsorption-desorption and isotherm studies
url http://psasir.upm.edu.my/id/eprint/116532/
http://psasir.upm.edu.my/id/eprint/116532/
http://psasir.upm.edu.my/id/eprint/116532/
http://psasir.upm.edu.my/id/eprint/116532/1/116532.pdf