Structural investigation of phosphonium-based ionic liquid impregnated mesostructured silica nanoparticles and application towards the adsorption of Pb(II)

Adsorption has been widely used in waste water treatment due to its simplicity and cost-effective process. One of the popular adsorbent was silica due to their advantageous properties. Immobilizing additive onto particular adsorbent is one of the way to enhance adsorption capacity. Immobilizing ioni...

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Main Authors: Mochamad L. Firmansyah, Mochamad L. Firmansyah, Hassan, Nurul S., A. Jalil, Aishah, Rino R. Mukti, Rino R. Mukti, Lee, Peng Teh, Herma D. Setiabudi, Herma D. Setiabudi
Format: Article
Language:English
Published: Institution of Chemical Engineers 2022
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Online Access:http://eprints.utm.my/103070/1/AishahAbdJalil2022_StructuralInvestigationofPhosphoniumBasedIonic.pdf
http://eprints.utm.my/103070/
http://dx.doi.org/10.1016/j.cherd.2021.12.025
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spelling my.utm.1030702023-10-12T09:18:34Z http://eprints.utm.my/103070/ Structural investigation of phosphonium-based ionic liquid impregnated mesostructured silica nanoparticles and application towards the adsorption of Pb(II) Mochamad L. Firmansyah, Mochamad L. Firmansyah Hassan, Nurul S. A. Jalil, Aishah Rino R. Mukti, Rino R. Mukti Lee, Peng Teh Herma D. Setiabudi, Herma D. Setiabudi TP Chemical technology Adsorption has been widely used in waste water treatment due to its simplicity and cost-effective process. One of the popular adsorbent was silica due to their advantageous properties. Immobilizing additive onto particular adsorbent is one of the way to enhance adsorption capacity. Immobilizing ionic liquid (IL) onto silica-based support could alleviate the drawbacks of IL and enhance the adsorption capacity. Thus, silica-based materials, silica and mesostructured silica nanoparticle (MSN), were impregnated with a phosphonium-based ionic liquid (IL), trioctyldodecylphosphonium bromide (P8,8,8,12Br), which was designated as IL@SIL and IL@MSN. The structural variation of the support greatly impact the adsorbent performance. The results showed that IL@MSN with superior surface properties exhibit a faster reaction kinetic and lower thermodynamic barrier for the adsorption of Pb(II). Both adsorbents followed a pseudo second-order kinetic and chemically adsorbed Pb(II). IL@MSN showed a higher adsorption capacity in both batch and column adsorption than that of IL@SIL. The equilibrium data of both adsorbents fitted well with the Freundlich isotherm model with maximum adsorption capacity of 256.4 and 142.9 mg g-1 for IL@MSN and IL@SIL, respectively. In agreement with the batch experiment, IL@MSN showed a higher adsorption capacity in column adsorption than that of IL@SIL (325.6 and 242.2, respectively). Column adsorption with IL@MSN was able to achieve 94% removal of Pb(II) while IL@SIL achieved 70%. Superior surface properties of IL@MSN allowed a longer duration of column exhaustion than that of IL@SIL. The column experimental data showed a good fit with the Thomas model. Immobilized IL on silica based materials has potential as an adsorbent for heavy metals and structural variation over the support material played an important role. Institution of Chemical Engineers 2022 Article PeerReviewed application/pdf en http://eprints.utm.my/103070/1/AishahAbdJalil2022_StructuralInvestigationofPhosphoniumBasedIonic.pdf Mochamad L. Firmansyah, Mochamad L. Firmansyah and Hassan, Nurul S. and A. Jalil, Aishah and Rino R. Mukti, Rino R. Mukti and Lee, Peng Teh and Herma D. Setiabudi, Herma D. Setiabudi (2022) Structural investigation of phosphonium-based ionic liquid impregnated mesostructured silica nanoparticles and application towards the adsorption of Pb(II). Chemical Engineering Research and Design, 178 (NA). pp. 328-339. ISSN 0263-8762 http://dx.doi.org/10.1016/j.cherd.2021.12.025 DOI : 10.1016/j.cherd.2021.12.025
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/
language English
topic TP Chemical technology
spellingShingle TP Chemical technology
Mochamad L. Firmansyah, Mochamad L. Firmansyah
Hassan, Nurul S.
A. Jalil, Aishah
Rino R. Mukti, Rino R. Mukti
Lee, Peng Teh
Herma D. Setiabudi, Herma D. Setiabudi
Structural investigation of phosphonium-based ionic liquid impregnated mesostructured silica nanoparticles and application towards the adsorption of Pb(II)
description Adsorption has been widely used in waste water treatment due to its simplicity and cost-effective process. One of the popular adsorbent was silica due to their advantageous properties. Immobilizing additive onto particular adsorbent is one of the way to enhance adsorption capacity. Immobilizing ionic liquid (IL) onto silica-based support could alleviate the drawbacks of IL and enhance the adsorption capacity. Thus, silica-based materials, silica and mesostructured silica nanoparticle (MSN), were impregnated with a phosphonium-based ionic liquid (IL), trioctyldodecylphosphonium bromide (P8,8,8,12Br), which was designated as IL@SIL and IL@MSN. The structural variation of the support greatly impact the adsorbent performance. The results showed that IL@MSN with superior surface properties exhibit a faster reaction kinetic and lower thermodynamic barrier for the adsorption of Pb(II). Both adsorbents followed a pseudo second-order kinetic and chemically adsorbed Pb(II). IL@MSN showed a higher adsorption capacity in both batch and column adsorption than that of IL@SIL. The equilibrium data of both adsorbents fitted well with the Freundlich isotherm model with maximum adsorption capacity of 256.4 and 142.9 mg g-1 for IL@MSN and IL@SIL, respectively. In agreement with the batch experiment, IL@MSN showed a higher adsorption capacity in column adsorption than that of IL@SIL (325.6 and 242.2, respectively). Column adsorption with IL@MSN was able to achieve 94% removal of Pb(II) while IL@SIL achieved 70%. Superior surface properties of IL@MSN allowed a longer duration of column exhaustion than that of IL@SIL. The column experimental data showed a good fit with the Thomas model. Immobilized IL on silica based materials has potential as an adsorbent for heavy metals and structural variation over the support material played an important role.
format Article
author Mochamad L. Firmansyah, Mochamad L. Firmansyah
Hassan, Nurul S.
A. Jalil, Aishah
Rino R. Mukti, Rino R. Mukti
Lee, Peng Teh
Herma D. Setiabudi, Herma D. Setiabudi
author_facet Mochamad L. Firmansyah, Mochamad L. Firmansyah
Hassan, Nurul S.
A. Jalil, Aishah
Rino R. Mukti, Rino R. Mukti
Lee, Peng Teh
Herma D. Setiabudi, Herma D. Setiabudi
author_sort Mochamad L. Firmansyah, Mochamad L. Firmansyah
title Structural investigation of phosphonium-based ionic liquid impregnated mesostructured silica nanoparticles and application towards the adsorption of Pb(II)
title_short Structural investigation of phosphonium-based ionic liquid impregnated mesostructured silica nanoparticles and application towards the adsorption of Pb(II)
title_full Structural investigation of phosphonium-based ionic liquid impregnated mesostructured silica nanoparticles and application towards the adsorption of Pb(II)
title_fullStr Structural investigation of phosphonium-based ionic liquid impregnated mesostructured silica nanoparticles and application towards the adsorption of Pb(II)
title_full_unstemmed Structural investigation of phosphonium-based ionic liquid impregnated mesostructured silica nanoparticles and application towards the adsorption of Pb(II)
title_sort structural investigation of phosphonium-based ionic liquid impregnated mesostructured silica nanoparticles and application towards the adsorption of pb(ii)
publisher Institution of Chemical Engineers
publishDate 2022
url http://eprints.utm.my/103070/1/AishahAbdJalil2022_StructuralInvestigationofPhosphoniumBasedIonic.pdf
http://eprints.utm.my/103070/
http://dx.doi.org/10.1016/j.cherd.2021.12.025
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score 13.18916