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Title Towards the valorisation of glycerol by designing the surface chemistry of carbon xerogels by doping and oxygen functionalization
ID_Doc 10128
Authors González, NG; Flores-López, SL; Cadus, LE; Arenillas, A; Morales, MR
Title Towards the valorisation of glycerol by designing the surface chemistry of carbon xerogels by doping and oxygen functionalization
Year 2024
Published
DOI 10.1016/j.envres.2024.119190
Abstract Research on innovative approaches to the valorisation of glycerol as a subproduct of biodiesel production has acquired an increasing demand in the development of a circular economy around energy generation, especially, in the line of improvement of the heterogeneous metallic catalysts used. In this regard, carbon xerogels have gained importance due to their stability and modifiability, while transition metals such as copper stand out as a cost-effective alternative, resulting in a technology where surface engineering plays a crucial role in achieving competitive catalytic activity. Building upon this, current research evaluates doped xerogels (Si, N, or GO) as supports of Cu and catalysts by themselves for glycerol oxidation. Benefits from the incorporation of oxygenated functional groups (OFG) were also evaluated. Results showed a consistently higher selectivity towards lactic acid (LA) across all catalysts and competitive catalytic conversion. In this performance, dopants played a crucial role in surface acid-base characteristics, while oxygenated functional groups (OFG) influenced copper adsorption, dispersion, and reducibility. Notably, the Cu/CXN-f catalyst demonstrated the highest LA yield by combining the effect of N as a doping species, with the presence of OFG and the formation of appropriated metallic Cu domains. This research underscores the potential of carbon xerogels in the tailored catalyst design, contributing to sustainable chemical production through their customizable textural and chemical properties.
Author Keywords Doped carbon xerogels; Oxygen functionalities; Glycerol; Copper; Nitrogen; Silica; Graphene oxide
Index Keywords Index Keywords
Document Type Other
Open Access Open Access
Source Science Citation Index Expanded (SCI-EXPANDED)
EID WOS:001248418400001
WoS Category Environmental Sciences; Public, Environmental & Occupational Health
Research Area Environmental Sciences & Ecology; Public, Environmental & Occupational Health
PDF https://doi.org/10.1016/j.envres.2024.119190
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