Abstract

Ultrafine quantum-dot-modified nitrogen-doped graphene has attracted board interest and has become frontier research in metal-air batteries and fuel cells. In this study, oxygen vacancy defect tungsten oxide quantum dots (V o -WO 3 QDs) are embedded in nitrogen-doped graphene (NG) to form abundant heterogeneous interfacial electrocatalysts (V o -WO 3 QDs/NG), which exhibits advanced electrocatalytic activity for oxygen reduction reaction (ORR) in an alkaline electrolyte. The optimized V o -WO 3 QDs/NG-5 (W content of 0.14 wt%) exhibits high onset potential (0.932 V vs. RHE) and decent half-wave potential (0.762 V vs. RHE) with high stability, which outperforms other reported tungsten metal oxide-based ORR electrocatalysts. The outstanding electrocatalytic performances of V o -WO 3 QDs/NG-5 are contributed by higher amount of oxygen vacancy and defects in V o -WO 3 QDs, as well as tunable interfacial electronic properties between the V o -WO 3 QDs and NG support. Furthermore, the density functional theory (DFT) is systematically conducted to determine the electronic properties and interface charge transmission for V o -WO 3 QDs/NG entity, providing important insight on the electrocatalysts in terms of band regulation and electron transport at the active interface between V o -WO 3 QDs and NG. Our finding paves an efficient pathway to design highly active hetero-structural and durable electrocatalysts for ORR applications based on defect-rich metal oxide QDs supported on nitrogen-doped graphene. Oxygen Vacancy Defect Tungsten oxide Quantum Dots Modified Three-dimensional Nitrogen-doped graphene with Interfacial Primitives Boosted Oxygen Reduction • Oxygen vacancy defect WO 3 quantum dots embedded N-doped Graphene enhanced ORR catalytic activity. • Interface electron transport are systematically simulated in heterojunctions using DFT system. • Vo-WO 3 QDs/NG-5 shows superior ORR catalytic activity and excellent cycle stability.

Full Text
Paper version not known

Talk to us

Join us for a 30 min session where you can share your feedback and ask us any queries you have

Schedule a call

Disclaimer: All third-party content on this website/platform is and will remain the property of their respective owners and is provided on "as is" basis without any warranties, express or implied. Use of third-party content does not indicate any affiliation, sponsorship with or endorsement by them. Any references to third-party content is to identify the corresponding services and shall be considered fair use under The CopyrightLaw.