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Biodiesel Production Using Wild Apricot (Prunus aitchisonii) Seed Oil via Heterogeneous Catalysts

We confined the formation and characterization of heterogenous nano-catalysts and then used them to produce biodiesel from the novel non-edible seed oil of Prunus aitchisonii. P. aitchisonii seeds’ oil content was extracted at about 52.4 ± 3% with 0.77% FFA. Three different heterogenous nano-catalys...

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Autores principales: Nisa, Batool, Ullah, Fazal, Nisa, Iqbal, Ahmad, Mushtaq, Zafar, Muhammad, Munir, Mamoona, Sultana, Shazia, Zaman, Wajid, Manghwar, Hakim, Ullah, Farman, Khan, Muhammad Nauman, El-Ansary, Diaa O., Elansary, Hosam O.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9332148/
https://www.ncbi.nlm.nih.gov/pubmed/35897929
http://dx.doi.org/10.3390/molecules27154752
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author Nisa, Batool
Ullah, Fazal
Nisa, Iqbal
Ahmad, Mushtaq
Zafar, Muhammad
Munir, Mamoona
Sultana, Shazia
Zaman, Wajid
Manghwar, Hakim
Ullah, Farman
Khan, Muhammad Nauman
El-Ansary, Diaa O.
Elansary, Hosam O.
author_facet Nisa, Batool
Ullah, Fazal
Nisa, Iqbal
Ahmad, Mushtaq
Zafar, Muhammad
Munir, Mamoona
Sultana, Shazia
Zaman, Wajid
Manghwar, Hakim
Ullah, Farman
Khan, Muhammad Nauman
El-Ansary, Diaa O.
Elansary, Hosam O.
author_sort Nisa, Batool
collection PubMed
description We confined the formation and characterization of heterogenous nano-catalysts and then used them to produce biodiesel from the novel non-edible seed oil of Prunus aitchisonii. P. aitchisonii seeds’ oil content was extracted at about 52.4 ± 3% with 0.77% FFA. Three different heterogenous nano-catalysts—calcined (CPC), KPC, and KOH-activated P. aitchisonii cake Titanium Dioxide (TiO(2))—were synthesized using calcination and precipitation methods. The mentioned catalysts were characterized through XRD, SEM, and EDX to inspect their crystallin dimension, shape, and arrangement. Titanium dioxide has morphological dimensions so that the average particle size ranges from 49–60 nm. The result shows that the crystal structure of TiO(2) is tetragonal (Anatase). The surface morphology of CPC illustrated that the roughness of the surface was increased after calcination, many macropores and hollow cavities appeared, and the external structure became very porous. These changes in morphology may increase the catalytic efficiency of CPC than non-calcined Prunus aitchisonii oil cake. The fuel belonging to PAOB stood according to the series suggested by ASTM criteria. All the characterization reports that P. aitchisonii is a novel and efficient potential source of biodiesel as a green energy source.
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spelling pubmed-93321482022-07-29 Biodiesel Production Using Wild Apricot (Prunus aitchisonii) Seed Oil via Heterogeneous Catalysts Nisa, Batool Ullah, Fazal Nisa, Iqbal Ahmad, Mushtaq Zafar, Muhammad Munir, Mamoona Sultana, Shazia Zaman, Wajid Manghwar, Hakim Ullah, Farman Khan, Muhammad Nauman El-Ansary, Diaa O. Elansary, Hosam O. Molecules Article We confined the formation and characterization of heterogenous nano-catalysts and then used them to produce biodiesel from the novel non-edible seed oil of Prunus aitchisonii. P. aitchisonii seeds’ oil content was extracted at about 52.4 ± 3% with 0.77% FFA. Three different heterogenous nano-catalysts—calcined (CPC), KPC, and KOH-activated P. aitchisonii cake Titanium Dioxide (TiO(2))—were synthesized using calcination and precipitation methods. The mentioned catalysts were characterized through XRD, SEM, and EDX to inspect their crystallin dimension, shape, and arrangement. Titanium dioxide has morphological dimensions so that the average particle size ranges from 49–60 nm. The result shows that the crystal structure of TiO(2) is tetragonal (Anatase). The surface morphology of CPC illustrated that the roughness of the surface was increased after calcination, many macropores and hollow cavities appeared, and the external structure became very porous. These changes in morphology may increase the catalytic efficiency of CPC than non-calcined Prunus aitchisonii oil cake. The fuel belonging to PAOB stood according to the series suggested by ASTM criteria. All the characterization reports that P. aitchisonii is a novel and efficient potential source of biodiesel as a green energy source. MDPI 2022-07-25 /pmc/articles/PMC9332148/ /pubmed/35897929 http://dx.doi.org/10.3390/molecules27154752 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Nisa, Batool
Ullah, Fazal
Nisa, Iqbal
Ahmad, Mushtaq
Zafar, Muhammad
Munir, Mamoona
Sultana, Shazia
Zaman, Wajid
Manghwar, Hakim
Ullah, Farman
Khan, Muhammad Nauman
El-Ansary, Diaa O.
Elansary, Hosam O.
Biodiesel Production Using Wild Apricot (Prunus aitchisonii) Seed Oil via Heterogeneous Catalysts
title Biodiesel Production Using Wild Apricot (Prunus aitchisonii) Seed Oil via Heterogeneous Catalysts
title_full Biodiesel Production Using Wild Apricot (Prunus aitchisonii) Seed Oil via Heterogeneous Catalysts
title_fullStr Biodiesel Production Using Wild Apricot (Prunus aitchisonii) Seed Oil via Heterogeneous Catalysts
title_full_unstemmed Biodiesel Production Using Wild Apricot (Prunus aitchisonii) Seed Oil via Heterogeneous Catalysts
title_short Biodiesel Production Using Wild Apricot (Prunus aitchisonii) Seed Oil via Heterogeneous Catalysts
title_sort biodiesel production using wild apricot (prunus aitchisonii) seed oil via heterogeneous catalysts
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9332148/
https://www.ncbi.nlm.nih.gov/pubmed/35897929
http://dx.doi.org/10.3390/molecules27154752
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