Transesterification of Jatropha curcas oil to biodiesel using highly porous sulfonated biochar catalyst: Optimization and characterization dataset

The study involves a collection of data from the published article titled “Active sites engineered biomass-carbon as a catalyst for biodiesel production: Process optimization using RSM and life cycle assessment “Energy Conversion Management” journal. Here, the activated biochar was functionalized us...

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Main Authors: Supongsenla Ao, Shiva prasad Gouda, Manickam Selvaraj, Rajender Boddula, Noora Al-Qahtani, Sakar Mohan, Samuel Lalthazuala Rokhum
Format: Article
Language:English
Published: Elsevier 2024-04-01
Series:Data in Brief
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2352340924000696
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author Supongsenla Ao
Shiva prasad Gouda
Manickam Selvaraj
Rajender Boddula
Noora Al-Qahtani
Sakar Mohan
Samuel Lalthazuala Rokhum
author_facet Supongsenla Ao
Shiva prasad Gouda
Manickam Selvaraj
Rajender Boddula
Noora Al-Qahtani
Sakar Mohan
Samuel Lalthazuala Rokhum
author_sort Supongsenla Ao
collection DOAJ
description The study involves a collection of data from the published article titled “Active sites engineered biomass-carbon as a catalyst for biodiesel production: Process optimization using RSM and life cycle assessment “Energy Conversion Management” journal. Here, the activated biochar was functionalized using 4-diazoniobenzenesulfonate to obtain sulfonic acid functionalized activated biochar. The catalyst was comprehensively characterized using XRD, FTIR, TGA, NH3-TPD, SEM-EDS, TEM, BET, and XPS analysis. Further, the obtained catalyst was applied for the transesterification of Jatropha curcas oil (JCO) to produce biodiesel. An experimental matrix was conducted using the RSM-CCD approach and the resulting data were analyzed using multiple regressions to fit a quadratic equation, where the maximum biodiesel yield achieved was 97.1 ± 0.4%, under specific reaction conditions: a reaction time of 50.3 min, a molar ratio of 22.9:1, a reaction temperature of 96.2 °C, and a catalyst loading of 7.7 wt.%. The obtained product biodiesel was analyzed using NMR and GC-MS analyzed and is reported in the above-mentioned article.
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spelling doaj.art-16e15f082e9a4599b6271ef4c7fe10e42024-03-20T06:09:41ZengElsevierData in Brief2352-34092024-04-0153110096Transesterification of Jatropha curcas oil to biodiesel using highly porous sulfonated biochar catalyst: Optimization and characterization datasetSupongsenla Ao0Shiva prasad Gouda1Manickam Selvaraj2Rajender Boddula3Noora Al-Qahtani4Sakar Mohan5Samuel Lalthazuala Rokhum6Department of Chemistry, National Institute of Technology Silchar, Assam 788010, IndiaDepartment of Chemistry, National Institute of Technology Silchar, Assam 788010, IndiaDepartment of Chemistry, Faculty of Science, King Khalid University, Abha 61413, Saudi ArabiaCenter for Advanced Materials (CAM), Qatar University, Doha 2713, Qatar; Corresponding authors.Center for Advanced Materials (CAM), Qatar University, Doha 2713, Qatar; Central Laboratories Unit (CLU), Qatar University, Doha 2713, Qatar; Corresponding author at: Center for Advanced Materials (CAM), Qatar University, Doha 2713, Qatar.Centre for Nano and Material Sciences, Jain (Deemed to be University), Jain Global Campus, Kanakapura, Bangalore, Karnataka 562112, IndiaDepartment of Chemistry, National Institute of Technology Silchar, Assam 788010, India; Corresponding authors.The study involves a collection of data from the published article titled “Active sites engineered biomass-carbon as a catalyst for biodiesel production: Process optimization using RSM and life cycle assessment “Energy Conversion Management” journal. Here, the activated biochar was functionalized using 4-diazoniobenzenesulfonate to obtain sulfonic acid functionalized activated biochar. The catalyst was comprehensively characterized using XRD, FTIR, TGA, NH3-TPD, SEM-EDS, TEM, BET, and XPS analysis. Further, the obtained catalyst was applied for the transesterification of Jatropha curcas oil (JCO) to produce biodiesel. An experimental matrix was conducted using the RSM-CCD approach and the resulting data were analyzed using multiple regressions to fit a quadratic equation, where the maximum biodiesel yield achieved was 97.1 ± 0.4%, under specific reaction conditions: a reaction time of 50.3 min, a molar ratio of 22.9:1, a reaction temperature of 96.2 °C, and a catalyst loading of 7.7 wt.%. The obtained product biodiesel was analyzed using NMR and GC-MS analyzed and is reported in the above-mentioned article.http://www.sciencedirect.com/science/article/pii/S23523409240006964-diazoniobenzenesulfonateJatropha curcas oilBiodieselResponse surface methodology
spellingShingle Supongsenla Ao
Shiva prasad Gouda
Manickam Selvaraj
Rajender Boddula
Noora Al-Qahtani
Sakar Mohan
Samuel Lalthazuala Rokhum
Transesterification of Jatropha curcas oil to biodiesel using highly porous sulfonated biochar catalyst: Optimization and characterization dataset
Data in Brief
4-diazoniobenzenesulfonate
Jatropha curcas oil
Biodiesel
Response surface methodology
title Transesterification of Jatropha curcas oil to biodiesel using highly porous sulfonated biochar catalyst: Optimization and characterization dataset
title_full Transesterification of Jatropha curcas oil to biodiesel using highly porous sulfonated biochar catalyst: Optimization and characterization dataset
title_fullStr Transesterification of Jatropha curcas oil to biodiesel using highly porous sulfonated biochar catalyst: Optimization and characterization dataset
title_full_unstemmed Transesterification of Jatropha curcas oil to biodiesel using highly porous sulfonated biochar catalyst: Optimization and characterization dataset
title_short Transesterification of Jatropha curcas oil to biodiesel using highly porous sulfonated biochar catalyst: Optimization and characterization dataset
title_sort transesterification of jatropha curcas oil to biodiesel using highly porous sulfonated biochar catalyst optimization and characterization dataset
topic 4-diazoniobenzenesulfonate
Jatropha curcas oil
Biodiesel
Response surface methodology
url http://www.sciencedirect.com/science/article/pii/S2352340924000696
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