Highly Crystalline, Pure ZSM-5 from K2CO3-Treated Mud and Its Catalytic Activity in Biodiesel Production

Addressing the challenge of clean energy and waste management for sustainable development goals, ZSM-5 were synthesized from high-abundance volcano mud (VM) precursor and then utilized as catalyst inbiodiesel production. Unlike conventional alkali treatment, we used the reflux method to extract the...

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Published in:SAINS MALAYSIANA
Main Authors: Hartati, Hartati; A'Yuni, Qurrota; Fitri, Medya Ayunda; Izzah, Adiba Naila; Novi-Talina, Melinda Intan; Firda, Putri Bintang Dea; Nufus, Tazkiyatun; Prasetyoko, Didik; Harmami, Harmami; Bahruji, Hasliza; Ahmad, Shahrul Nizam
Format: Article
Language:English
Published: UNIV KEBANGSAAN MALAYSIA, FAC SCIENCE & TECHNOLOGY 2024
Subjects:
Online Access:https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-recordWOS:001367374600015
author Hartati
Hartati; A'Yuni
Qurrota; Fitri
Medya Ayunda; Izzah
Adiba Naila; Novi-Talina
Melinda Intan; Firda
Putri Bintang Dea; Nufus
Tazkiyatun; Prasetyoko
Didik; Harmami
Harmami; Bahruji
Hasliza; Ahmad
Shahrul Nizam
spellingShingle Hartati
Hartati; A'Yuni
Qurrota; Fitri
Medya Ayunda; Izzah
Adiba Naila; Novi-Talina
Melinda Intan; Firda
Putri Bintang Dea; Nufus
Tazkiyatun; Prasetyoko
Didik; Harmami
Harmami; Bahruji
Hasliza; Ahmad
Shahrul Nizam
Highly Crystalline, Pure ZSM-5 from K2CO3-Treated Mud and Its Catalytic Activity in Biodiesel Production
Science & Technology - Other Topics
author_facet Hartati
Hartati; A'Yuni
Qurrota; Fitri
Medya Ayunda; Izzah
Adiba Naila; Novi-Talina
Melinda Intan; Firda
Putri Bintang Dea; Nufus
Tazkiyatun; Prasetyoko
Didik; Harmami
Harmami; Bahruji
Hasliza; Ahmad
Shahrul Nizam
author_sort Hartati
spelling Hartati, Hartati; A'Yuni, Qurrota; Fitri, Medya Ayunda; Izzah, Adiba Naila; Novi-Talina, Melinda Intan; Firda, Putri Bintang Dea; Nufus, Tazkiyatun; Prasetyoko, Didik; Harmami, Harmami; Bahruji, Hasliza; Ahmad, Shahrul Nizam
Highly Crystalline, Pure ZSM-5 from K2CO3-Treated Mud and Its Catalytic Activity in Biodiesel Production
SAINS MALAYSIANA
English
Article
Addressing the challenge of clean energy and waste management for sustainable development goals, ZSM-5 were synthesized from high-abundance volcano mud (VM) precursor and then utilized as catalyst inbiodiesel production. Unlike conventional alkali treatment, we used the reflux method to extract the silica-alumina from the VM. K2CO3 alkali salt was utilized as the extractor, activator, and structure-directing agent. The synthesis was also performed using NaOH as a comparison. Various analytical techniques were employed including XRD, FTIR, SEM-EDX, TEM, N2 physisorption, and GC-MS to identify the effect of alkali types on the crystallization rate, morphology, and catalytic activity. Highly crystalline, pure ZSM-5 was successfully synthesized. It is found that K2CO3 facilitates a slow crystallization rate, requiring a minimum of 5 h of hydrothermal treatment to produce ZSM-5. Interestingly, slow crystallization led to homogeneous ZSM-5 particles with a narrow size distribution and a high mesoporous structure. In contrast, NaOH promoted a faster crystallization rate, producing inhomogeneous ZSM-5 particles size with a dominant microporosity. Two different feedstock qualities i.e., waste cooking oil (WCO) and oleic acid (OA) were used to assess the catalyst's versatility. Among all zeolites synthesized using K2CO3, ZK6 exhibited the highest activity, with an 85.9% yield and 30% selectivity for FAME in WCO feedstock. In high-quality OA feedstock, ZK6 achieved significantly higher activity of 97.1% yield with 87.6% selectivity for FAME. ZNa6, the comparable sample synthesized with NaOH, achieved a 78.2% yield with 60.4% FAME selectivity in WCO feedstock. A higher catalytic activity of 97.5% yield with 100% selectivity towards FAME was achieved using high-purity OA feedstock.
UNIV KEBANGSAAN MALAYSIA, FAC SCIENCE & TECHNOLOGY
0126-6039

2024
53
11
10.17576/jsm-2024-5311-15
Science & Technology - Other Topics

WOS:001367374600015
https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-recordWOS:001367374600015
title Highly Crystalline, Pure ZSM-5 from K2CO3-Treated Mud and Its Catalytic Activity in Biodiesel Production
title_short Highly Crystalline, Pure ZSM-5 from K2CO3-Treated Mud and Its Catalytic Activity in Biodiesel Production
title_full Highly Crystalline, Pure ZSM-5 from K2CO3-Treated Mud and Its Catalytic Activity in Biodiesel Production
title_fullStr Highly Crystalline, Pure ZSM-5 from K2CO3-Treated Mud and Its Catalytic Activity in Biodiesel Production
title_full_unstemmed Highly Crystalline, Pure ZSM-5 from K2CO3-Treated Mud and Its Catalytic Activity in Biodiesel Production
title_sort Highly Crystalline, Pure ZSM-5 from K2CO3-Treated Mud and Its Catalytic Activity in Biodiesel Production
container_title SAINS MALAYSIANA
language English
format Article
description Addressing the challenge of clean energy and waste management for sustainable development goals, ZSM-5 were synthesized from high-abundance volcano mud (VM) precursor and then utilized as catalyst inbiodiesel production. Unlike conventional alkali treatment, we used the reflux method to extract the silica-alumina from the VM. K2CO3 alkali salt was utilized as the extractor, activator, and structure-directing agent. The synthesis was also performed using NaOH as a comparison. Various analytical techniques were employed including XRD, FTIR, SEM-EDX, TEM, N2 physisorption, and GC-MS to identify the effect of alkali types on the crystallization rate, morphology, and catalytic activity. Highly crystalline, pure ZSM-5 was successfully synthesized. It is found that K2CO3 facilitates a slow crystallization rate, requiring a minimum of 5 h of hydrothermal treatment to produce ZSM-5. Interestingly, slow crystallization led to homogeneous ZSM-5 particles with a narrow size distribution and a high mesoporous structure. In contrast, NaOH promoted a faster crystallization rate, producing inhomogeneous ZSM-5 particles size with a dominant microporosity. Two different feedstock qualities i.e., waste cooking oil (WCO) and oleic acid (OA) were used to assess the catalyst's versatility. Among all zeolites synthesized using K2CO3, ZK6 exhibited the highest activity, with an 85.9% yield and 30% selectivity for FAME in WCO feedstock. In high-quality OA feedstock, ZK6 achieved significantly higher activity of 97.1% yield with 87.6% selectivity for FAME. ZNa6, the comparable sample synthesized with NaOH, achieved a 78.2% yield with 60.4% FAME selectivity in WCO feedstock. A higher catalytic activity of 97.5% yield with 100% selectivity towards FAME was achieved using high-purity OA feedstock.
publisher UNIV KEBANGSAAN MALAYSIA, FAC SCIENCE & TECHNOLOGY
issn 0126-6039

publishDate 2024
container_volume 53
container_issue 11
doi_str_mv 10.17576/jsm-2024-5311-15
topic Science & Technology - Other Topics
topic_facet Science & Technology - Other Topics
accesstype
id WOS:001367374600015
url https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-recordWOS:001367374600015
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