Plant-based calcium silicate from rice husk ash: A green adsorbent for free fatty acid recovery from waste frying oil

Driven by the urgent need for a solution to tackle the surge of rice husk (RH) and waste frying oil (WFO) waste accumulation at a global scale, this report highlights the use of calcium silicates (CS) extracted from acid-pre-treated rice husk ash (RHA) for free fatty acid (FFA) removal from WFO as c...

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Published in:Heliyon
Main Author: Zainal Z.S.; Hoo P.; Ahmad A.L.; Abdullah A.Z.; Ng Q.; Shuit S.; Enche Ab Rahim S.K.; Andas J.
Format: Article
Language:English
Published: Elsevier Ltd 2024
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85185588938&doi=10.1016%2fj.heliyon.2024.e26591&partnerID=40&md5=3aab514b6b786dc4c9ce9eed6312349f
id 2-s2.0-85185588938
spelling 2-s2.0-85185588938
Zainal Z.S.; Hoo P.; Ahmad A.L.; Abdullah A.Z.; Ng Q.; Shuit S.; Enche Ab Rahim S.K.; Andas J.
Plant-based calcium silicate from rice husk ash: A green adsorbent for free fatty acid recovery from waste frying oil
2024
Heliyon
10
4
10.1016/j.heliyon.2024.e26591
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85185588938&doi=10.1016%2fj.heliyon.2024.e26591&partnerID=40&md5=3aab514b6b786dc4c9ce9eed6312349f
Driven by the urgent need for a solution to tackle the surge of rice husk (RH) and waste frying oil (WFO) waste accumulation at a global scale, this report highlights the use of calcium silicates (CS) extracted from acid-pre-treated rice husk ash (RHA) for free fatty acid (FFA) removal from WFO as conventional RHA shows limited FFA adsorption performance. A novel alkaline earth silicate extraction method from acid-pre-treated RHA was outlined. The structural and behavioural attributes of the synthesised CS were identified through BET, SEM-EDS, and XRD analyses and compared to those of RHA. Notable morphology and structural modification were determined, including reducing specific surface areas, mitigating from amorphous to crystalline structure with regular geometric forms, and detecting Si–O–Ca functional groups exclusive to CS adsorbents. A comparison study showed superior lauric acid (LA) adsorption performance by CS absorbents over acid-pre-treated RHA, with a significant increase from 0.0831 ± 0.0004 mmol LA/g to 2.5808 ± 0.0011 mmol LA/g after 60 min. Recognised as the best-performing CS adsorbent, CS-1.0 was used for further investigations on the effect of dosage, LA concentration, and temperature for efficient LA adsorption, with up to 100% LA removal and 5.6712 ± 0.0016 mmol LA/g adsorption capacity. The adsorption isotherm and kinetic studies showed LA adsorption onto CS-1.0 followed Freundlich isotherm with KF = 0.0598 mmol(1-1/n) L(1/n) g−1 & Qe,cal = 3.1696 mmol g−1 and intraparticle diffusion model with kid = 0.1250 mmol g−1 min0.5 & Ci = 0.9625 mmol g−1, indicating rapid initial adsorption and involvement of carboxylate end of LA and the calcium ions on the CS-1.0 in the rate-limiting step. The high equilibrium adsorption capacity and LA adsorption rate indicated that the proposed CS-1.0 adsorbent has excellent potential to recover FFA from WFO effectively. © 2024 The Authors
Elsevier Ltd
24058440
English
Article
All Open Access; Gold Open Access
author Zainal Z.S.; Hoo P.; Ahmad A.L.; Abdullah A.Z.; Ng Q.; Shuit S.; Enche Ab Rahim S.K.; Andas J.
spellingShingle Zainal Z.S.; Hoo P.; Ahmad A.L.; Abdullah A.Z.; Ng Q.; Shuit S.; Enche Ab Rahim S.K.; Andas J.
Plant-based calcium silicate from rice husk ash: A green adsorbent for free fatty acid recovery from waste frying oil
author_facet Zainal Z.S.; Hoo P.; Ahmad A.L.; Abdullah A.Z.; Ng Q.; Shuit S.; Enche Ab Rahim S.K.; Andas J.
author_sort Zainal Z.S.; Hoo P.; Ahmad A.L.; Abdullah A.Z.; Ng Q.; Shuit S.; Enche Ab Rahim S.K.; Andas J.
title Plant-based calcium silicate from rice husk ash: A green adsorbent for free fatty acid recovery from waste frying oil
title_short Plant-based calcium silicate from rice husk ash: A green adsorbent for free fatty acid recovery from waste frying oil
title_full Plant-based calcium silicate from rice husk ash: A green adsorbent for free fatty acid recovery from waste frying oil
title_fullStr Plant-based calcium silicate from rice husk ash: A green adsorbent for free fatty acid recovery from waste frying oil
title_full_unstemmed Plant-based calcium silicate from rice husk ash: A green adsorbent for free fatty acid recovery from waste frying oil
title_sort Plant-based calcium silicate from rice husk ash: A green adsorbent for free fatty acid recovery from waste frying oil
publishDate 2024
container_title Heliyon
container_volume 10
container_issue 4
doi_str_mv 10.1016/j.heliyon.2024.e26591
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85185588938&doi=10.1016%2fj.heliyon.2024.e26591&partnerID=40&md5=3aab514b6b786dc4c9ce9eed6312349f
description Driven by the urgent need for a solution to tackle the surge of rice husk (RH) and waste frying oil (WFO) waste accumulation at a global scale, this report highlights the use of calcium silicates (CS) extracted from acid-pre-treated rice husk ash (RHA) for free fatty acid (FFA) removal from WFO as conventional RHA shows limited FFA adsorption performance. A novel alkaline earth silicate extraction method from acid-pre-treated RHA was outlined. The structural and behavioural attributes of the synthesised CS were identified through BET, SEM-EDS, and XRD analyses and compared to those of RHA. Notable morphology and structural modification were determined, including reducing specific surface areas, mitigating from amorphous to crystalline structure with regular geometric forms, and detecting Si–O–Ca functional groups exclusive to CS adsorbents. A comparison study showed superior lauric acid (LA) adsorption performance by CS absorbents over acid-pre-treated RHA, with a significant increase from 0.0831 ± 0.0004 mmol LA/g to 2.5808 ± 0.0011 mmol LA/g after 60 min. Recognised as the best-performing CS adsorbent, CS-1.0 was used for further investigations on the effect of dosage, LA concentration, and temperature for efficient LA adsorption, with up to 100% LA removal and 5.6712 ± 0.0016 mmol LA/g adsorption capacity. The adsorption isotherm and kinetic studies showed LA adsorption onto CS-1.0 followed Freundlich isotherm with KF = 0.0598 mmol(1-1/n) L(1/n) g−1 & Qe,cal = 3.1696 mmol g−1 and intraparticle diffusion model with kid = 0.1250 mmol g−1 min0.5 & Ci = 0.9625 mmol g−1, indicating rapid initial adsorption and involvement of carboxylate end of LA and the calcium ions on the CS-1.0 in the rate-limiting step. The high equilibrium adsorption capacity and LA adsorption rate indicated that the proposed CS-1.0 adsorbent has excellent potential to recover FFA from WFO effectively. © 2024 The Authors
publisher Elsevier Ltd
issn 24058440
language English
format Article
accesstype All Open Access; Gold Open Access
record_format scopus
collection Scopus
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