Litcius/Paper detail

Harnessing Atomically Dispersed Cobalt for the Reductive Catalytic Fractionation of Lignocellulose

Xiancheng Li, Rumin Ma, Xueying Gao, Helong Li, Shuizhong Wang, Guoyong Song

2024Advanced Science26 citationsDOIOpen Access PDF

Abstract

Abstract The reductive catalytic fractionation (RCF) of lignocellulose, considering lignin valorization at design time, has demonstrated the entire utilization of all lignocellulose components; however, such processes always require catalysts based on precious metals or high‐loaded nonprecious metals. Herein, the study develops an ultra‐low loaded, atomically dispersed cobalt catalyst, which displays an exceptional performance in the RCF of lignocellulose. An approximately theoretical maximum yield of phenolic monomers (48.3 wt.%) from lignin is realized, rivaling precious metal catalysts. High selectivity toward 4‐propyl‐substituted guaiacol/syringol facilitates their purification and follows syntheses of highly adhesive polyesters. Lignin nanoparticles (LNPs) are generated by simple treatment of the obtained phenolic dimers and oligomers. RCF‐resulted carbohydrate pulp are more obedient to enzymatic hydrolysis. Experimental studies on lignin model compounds reveal the concerted cleavage of C α –O and C β –O pathway for the rupture of β‐O‐4 structure. Overall, the approach involves valorizing products derived from lignin biopolymer, providing the opportunity for the comprehensive utilization of all components within lignocellulose.

Topics & Concepts

LigninCatalysisGuaiacolCobaltChemistryBiopolymerFractionationPolyesterHydrolysisOrganic chemistryChemical engineeringMonomerYield (engineering)Materials sciencePolymerComposite materialEngineeringLignin and Wood ChemistryCatalysis for Biomass ConversionEnzyme-mediated dye degradation