Regulation of functional groups on graphene quantum dots directs selective CO<sub>2</sub> to CH<sub>4</sub> conversion.

Zhang, Tianyu; Li, Weitao; Huang, Kai; Guo, Huazhang; Li, Zhengyuan; Fang, Yanbo; Yadav, Ram Manohar; Shanov, Vesselin et al. · Nat Commun · 2021

basic_science · Level V

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Abstract

A catalyst system with dedicated selectivity toward a single hydrocarbon or oxygenate product is essential to enable the industrial application of electrochemical conversion of CO<sub>2</sub> to high-value chemicals. Cu is the only known metal catalyst that can convert CO<sub>2</sub> to high-order hydrocarbons and oxygenates. However, the Cu-based catalysts suffer from diverse selectivity. Here, we report that the functionalized graphene quantum dots can direct CO<sub>2</sub> to CH<sub>4</sub> conversion with simultaneous high selectivity and production rate. The electron-donating groups facilitate the yield of CH<sub>4</sub> from CO<sub>2</sub> electro-reduction while electron-withdrawing groups suppress CO<sub>2</sub> electro-reduction. The yield of CH<sub>4</sub> on electron-donating group functionalized graphene quantum dots is positively correlated to the electron-donating ability and content of electron-donating group. The graphene quantum dots functionalized by either -OH or -NH<sub>2</sub> functional group could achieve Faradaic efficiency of 70.0% for CH<sub>4</sub> at -200 mA cm<sup>-2</sup> partial current density of CH<sub>4</sub>. The superior yield of CH<sub>4</sub> on electron-donating group- over the electron-withdrawing group-functionalized graphene quantum dots possibly originates from the maintenance of higher charge density of potential active sites (neighboring C or N) and the interaction between the electron-donating group and key intermediates. This work provides insight into the design of active carbon catalysts at the molecular scale for the CO<sub>2</sub> electro-reduction.