Depolymerisation of lignin to aromatics is a challenging task. We herein report that a Cu(OAc)(2)/BF3.OEt2 catalyst is effective in simultaneously cleaving C-C bonds in beta-1 and beta-O-4 ketones, yielding esters and phenols. In-depth studies show that C-H bond activation is the rate determining step for C-C bond cleavage. BF3.OEt2 promotes the reaction via activating the beta-C-H bond. This study offers the potential to obtain aromatic esters from lignin
Lignin in lignocellulosic biomass is the only renewable source for aromatic compounds, and effective...
Conversion of lignin into well-defined aromatic chemicals is a highly attractive goal but is often h...
The cleavage of C–O bond in lignin β-O-4 model compounds to form aromatics has been achieved via a t...
We herein report a two-step strategy for oxidative cleavage of lignin C-C bond to aromatic acids and...
The conversion of lignin into aromatics as commodity chemicals and high-quality fuels is a highly de...
We herein report a two-step strategy for oxidative cleavage of lignin C–C bond to aromatic acids and...
Lignin is a major component of lignocellulosic biomass and could be an important renewable feedstock...
Lignin, an abundant natural polymer with high aromaticity, is a potential source of renewable chemic...
Copper on γ-alumina and on mixed magnesia-alumina, Cu/MgO-Al2O3, catalyse the hydrodeoxygenation (HD...
Selective oxidative cleavage of C-C bond is pivotal for producing functionalized molecules, useful f...
Biorefinery and paper pulping lignins, referred hereto as technical lignins, contain condensed C–C i...
As fossil resources are undergoing fast depletion, the harvesting of sustainable aromatic compounds ...
In the coming decades major changes are expected in the chemical industry regarding the utilized raw...
The detailed mechanism of the base-catalyzed C-C and C-O bond cleavage of a model compound represent...
The detailed mechanism of the base-catalyzed C-C and C-O bond cleavage of a model compound represent...
Lignin in lignocellulosic biomass is the only renewable source for aromatic compounds, and effective...
Conversion of lignin into well-defined aromatic chemicals is a highly attractive goal but is often h...
The cleavage of C–O bond in lignin β-O-4 model compounds to form aromatics has been achieved via a t...
We herein report a two-step strategy for oxidative cleavage of lignin C-C bond to aromatic acids and...
The conversion of lignin into aromatics as commodity chemicals and high-quality fuels is a highly de...
We herein report a two-step strategy for oxidative cleavage of lignin C–C bond to aromatic acids and...
Lignin is a major component of lignocellulosic biomass and could be an important renewable feedstock...
Lignin, an abundant natural polymer with high aromaticity, is a potential source of renewable chemic...
Copper on γ-alumina and on mixed magnesia-alumina, Cu/MgO-Al2O3, catalyse the hydrodeoxygenation (HD...
Selective oxidative cleavage of C-C bond is pivotal for producing functionalized molecules, useful f...
Biorefinery and paper pulping lignins, referred hereto as technical lignins, contain condensed C–C i...
As fossil resources are undergoing fast depletion, the harvesting of sustainable aromatic compounds ...
In the coming decades major changes are expected in the chemical industry regarding the utilized raw...
The detailed mechanism of the base-catalyzed C-C and C-O bond cleavage of a model compound represent...
The detailed mechanism of the base-catalyzed C-C and C-O bond cleavage of a model compound represent...
Lignin in lignocellulosic biomass is the only renewable source for aromatic compounds, and effective...
Conversion of lignin into well-defined aromatic chemicals is a highly attractive goal but is often h...
The cleavage of C–O bond in lignin β-O-4 model compounds to form aromatics has been achieved via a t...