Advances in the Catalytic Conversion of Biomass Components to Ester Derivatives: Challenges and Opportunities

Biomass has received significant attention as a sustainable feedstock that can replace diminishing fossil fuels in the production of value-added chemicals and energy. Many new catalytic technologies have been developed for the conversion of biomass feedstocks into valuable biofuels and bioproducts....

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Format: eBook
Language:English
Published: Basel MDPI - Multidisciplinary Digital Publishing Institute 2022
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Online Access:Open Access: DOAB: description of the publication
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520 |a Biomass has received significant attention as a sustainable feedstock that can replace diminishing fossil fuels in the production of value-added chemicals and energy. Many new catalytic technologies have been developed for the conversion of biomass feedstocks into valuable biofuels and bioproducts. However, many of these still suffer from several disadvantages, such as weak catalytic performance, harsh reaction conditions, a high processing cost, and questionable sustainability, which limit their further applicability/development in the immediate future. In this context, the esterification of carboxylic acids represents a very valuable solution to these problems, requiring mild reaction conditions and being advantageously integrable with many existing processes of biomass conversion. An emblematic example is the acid-catalyzed hydrothermal route for levulinic acid production, already upgraded to that of higher value alkyl levulinates, obtained by esterification or directly by biomass alcoholysis. Many other chemical processes benefit from esterification, such as the synthesis of biodiesel, which includes monoalkyl esters of long-chain fatty acids prepared from renewable vegetable oils and animal fats, or that of cellulose esters, mainly acetates, for textile uses. Even pyrolysis bio-oil should be stabilized by esterification to neutralize the acidity of carboxylic acids and moderate the reactivity of other typical biomass-derived compounds, such as sugars, furans, aldehydes, and phenolics. This Special Issue reports on the recent main advances in the homogeneous/heterogeneous catalytic conversion of model/real biomass components into ester derivatives that are extremely attractive for both the academic and industrial fields. Dr. Domenico Licursi Guest Editor 
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653 |a biorefinery 
653 |a butanolysis 
653 |a cardoon 
653 |a catalytic performance 
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653 |a diesel blends 
653 |a estolides 
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653 |a eugenol 
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653 |a furfural 
653 |a heterogeneous catalysis 
653 |a heterogeneous catalysts 
653 |a humins 
653 |a hydrolysis 
653 |a levulinic acid 
653 |a mesoporous aluminosilicate 
653 |a methyl (R)-10-hydroxystearate 
653 |a microwaves 
653 |a n-butyl levulinate 
653 |a n/a 
653 |a Ni-Fe bimetallic catalysts 
653 |a Ni-MgO-Al2O3 catalyst 
653 |a PEG 
653 |a process intensification 
653 |a sewage scum 
653 |a solvothermal process 
653 |a solvothermal processing 
653 |a transesterification 
653 |a waste biomass 
653 |a γ-valerolactone 
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