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Techniques for the Evolution of Robust Pentose-fermenting Yeast for Bioconversion of Lignocellulose to Ethanol
Published on: October 24, 2016
Achieving Near-Unity Glyoxylate Selectivity in Ethylene Glycol Oxidation by Spatiotemporal Coupling of Pulsed
Weipeng Zhao1, Pengwei Zhao1, Bin Chen1
1School of Chemical Engineering and Technology, State Key Laboratory of Chemical Engineering and Low-Carbon Technology, International Joint Laboratory of Low-carbon Chemical Engineering of Ministry of Education, Tianjin University, Tianjin, China.
Abstract:
Electrochemical cascade reactions suffer from suboptimal selectivity toward high-value intermediates due to the uncontrollable sequential conversion inherent in conventional steady-state electrolysis. To transcend the intrinsic limitations of one-dimensional control, we propose a spatiotemporal synergy strategy for precision electrocatalysis. In this framework, the temporal dimension is governed by pulsed electrolysis, facilitating the rhythmic generation and rapid liberation of target intermediates. Simultaneously, the spatial dimension is engineered via molecular steric modifiers (p-toluidine) to create a persistent hydrophobic interface that effectively suppresses deleterious hydration-driven overoxidation pathways. Synergistically, this dual-dimensional orchestration achieves unprecedented precision, as evidenced by a dramatic leap in glyoxylate selectivity from 25.5% to >99.0%. This work demonstrates a promising and transferable design principle for precision electrocatalysis in complex reaction networks. The spatiotemporal decoupling strategy, integrating temporal pulsed electrolysis for intermediate release and spatial interface engineering for overconsumption suppression, is demonstrated here for ethylene glycol oxidation and provides a rational basis for addressing similar selectivity challenges in other electrocatalytic systems.
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