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Elucidation of the Synergistic Effect of Dopants and Vacancies on Promoted Selectivity for CO<sub>2</sub> Electroreduction to Formate

153

Citations

47

References

2020

Year

Abstract

Sn-based materials are identified as promising catalysts for the CO<sub>2</sub> electroreduction (CO2RR) to formate (HCOO<sup>-</sup> ). However, their insufficient selectivity and activity remain grand challenges. A new type of SnO<sub>2</sub> nanosheet with simultaneous N dopants and oxygen vacancies (V<sub>O</sub> -rich N-SnO<sub>2</sub> NS) for promoting CO<sub>2</sub> conversion to HCOO<sup>-</sup> is reported. Due to the likely synergistic effect of N dopant and V<sub>O</sub> , the V<sub>O</sub> -rich N-SnO<sub>2</sub> NS exhibits high catalytic selectivity featured by an HCOO<sup>-</sup> Faradaic efficiency (FE) of 83% at -0.9 V and an FE of > 90% for all C1 products (HCOO<sup>-</sup> and CO) at a wide potential range from -0.9 to -1.2 V. Low coordination Sn-N moieties are the active sites with optimal electronic and geometric structures regulated by V<sub>O</sub> and N dopants. Theoretical calculations elucidate that the reaction free energy of HCOO* protonation is decreased on the V<sub>O</sub> -rich N-SnO<sub>2</sub> NS, thus enhancing HCOO<sup>-</sup> selectivity. The weakened H* adsorption energy also inhibits the hydrogen evolution reaction, a dominant side reaction during the CO2RR. Furthermore, using the catalyst as the cathode, a spontaneous Galvanic Zn-CO<sub>2</sub> cell and a solar-powered electrolysis process successfully demonstrated the efficient HCOO<sup>-</sup> generation through CO<sub>2</sub> conversion and storage.

References

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