Sulfonated multi-walled carbon nanotubes for biodiesel production through triglycerides transesterification

Effective solid acid catalysts play a key role to produce high-quality biodiesel through triglyceride transesterification. The present work describes a facile technique for the synthesis of a high-performing sulfonated multi-walled carbon nanotube (S-MWCNTs) solid acid catalyst for fatty acid ethyl...

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Bibliographic Details
Published inRSC advances Vol. 7; no. 12; pp. 725 - 7258
Main Authors Guan, Qingqing, Li, Yi, Chen, Yuan, Shi, Yuzhen, Gu, Junjie, Li, Bin, Miao, Rongrong, Chen, Qiuling, Ning, Ping
Format Journal Article
LanguageEnglish
Published 01.01.2017
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Summary:Effective solid acid catalysts play a key role to produce high-quality biodiesel through triglyceride transesterification. The present work describes a facile technique for the synthesis of a high-performing sulfonated multi-walled carbon nanotube (S-MWCNTs) solid acid catalyst for fatty acid ethyl ester (biodiesel) production. The results indicated that S-MWCNTs possessed high acidity due to their polycyclic textural matrix. An overall conversion of 97.8% is achieved for triglycerides at 1 h, 150 °C using 3.7 wt% of catalyst in ethanol, outperforming its counterpart catalysts, such as hydrothermal carbonization synthesized sulfonated carbon and metal oxide catalyst WO 3 /ZrO 2 . This superior performance is a result of the high acidity that S-MWCNTs possess, stemming from their polycyclic textural matrix. The catalyst was fully characterized by BET, FT-IR, XPS and TEM measurements to understand and evaluate their physical and structural properties. Combining activity and characterization data enables the postulation of the following reaction mechanisms for triglyceride transesterification based on S-MWCNTs:SO 3 H groups first absorb triglycerides and ethanol through the interaction between the acid sites and the atomic oxygen. The carbonyl carbon was then attacked by the nucleophilic ethanol to produce fatty acidethyl ester (CH 3 CH 2 COOR), the final product. Findings from this work provide useful insights on designing effective solid acid catalysts via facile synthesis and regeneration protocol for the transesterification of triglyceride to produce biodiesels. Effective solid acid catalysts play a key role to produce high-quality biodiesel through triglyceride transesterification.
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ISSN:2046-2069
2046-2069
DOI:10.1039/c6ra28067f