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MXene/SrTiO3 Heterostructure for FAME Synthesis from the Non-Edible Feedstock Oil Silybum marianum
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This study presents the production of FAMEs from non-edible Silybum marianum oil using a catalyst consisting of an MXene/SrTiO3 composite. The primary aim of this study was to reduce our reliance on petroleum-based fuels by harnessing non-edible oil sources. The catalyst, once prepared, achieved an impressive conversion rate of 98.8%. The optimal parameters for this catalytic conversion included a 7 wt% catalyst concentration, a 1:12 molar ratio of oil to methanol, a 100 min reaction time, and a reaction temperature of 60 °C. These parameters ensured the successful completion of the FAME conversion process. The physicochemical properties of Silybum marianum oil confirmed its suitability as a biodiesel source on an industrial scale. The verification of the synthesized MXene/SrTiO3 catalyst was conducted via XRD, SEM, EDX, and BET, and synthesized biodiesel was confirmed via 1H and 13C-NMR, FTIR, and GC-MS. These results indicate that the catalyst described in this study exhibits significant potential for cost-effective biodiesel production under the appropriate reaction conditions.
Title: MXene/SrTiO3 Heterostructure for FAME Synthesis from the Non-Edible Feedstock Oil Silybum marianum
Description:
This study presents the production of FAMEs from non-edible Silybum marianum oil using a catalyst consisting of an MXene/SrTiO3 composite.
The primary aim of this study was to reduce our reliance on petroleum-based fuels by harnessing non-edible oil sources.
The catalyst, once prepared, achieved an impressive conversion rate of 98.
8%.
The optimal parameters for this catalytic conversion included a 7 wt% catalyst concentration, a 1:12 molar ratio of oil to methanol, a 100 min reaction time, and a reaction temperature of 60 °C.
These parameters ensured the successful completion of the FAME conversion process.
The physicochemical properties of Silybum marianum oil confirmed its suitability as a biodiesel source on an industrial scale.
The verification of the synthesized MXene/SrTiO3 catalyst was conducted via XRD, SEM, EDX, and BET, and synthesized biodiesel was confirmed via 1H and 13C-NMR, FTIR, and GC-MS.
These results indicate that the catalyst described in this study exhibits significant potential for cost-effective biodiesel production under the appropriate reaction conditions.
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