To achieve atom-economic conversion of xylose into high-value-added chemicals, a green and novel process route for the coproduction of lactic acid (LA) and glycolic acid (GA) has been proposed. However, the realization of this route faces three major challenges. Here, Co3O4 with bifunctional active sites was prepared, which for the first time achieved the efficient coproduction of LA (42.39%) and GA (32.57%) from xylose under an air atmosphere. The yields of LA and GA can be adjusted by modifying the reaction atmosphere. The reaction mechanism of dual-path parallel reactions promoted by dual active sites was clarified through multiscale experiments, kinetic studies, and DFT calculations. The Lewis acid site and lattice oxygen oxidation mechanisms mediated by Co3+ drive the formation pathways of LA and GA, respectively. Lewis acid sites exhibit excellent stability in an air atmosphere, and oxidative activity is also retained after 5 cycles under an O2 atmosphere. The activity of used catalysts can be fully restored through calcination treatment. This work provides new insights for enhancing atom economy in biomass refining.
Guo et al. (Thu,) studied this question.