1. Qin JF, Lin JH, Chen TS, et al. Facile synthesis of V-doped CoP nanoparticles as bifunctional electrocatalyst for efficient water splitting. Journal of Energy Chemistry, 2019, 39:182-187 |
2. Qin JF, Xie JY, Wang N, et al. Surface construction of loose Co(OH)2 shell derived from ZIF-67 nanocube for efficient oxygen evolution. Journal of Colloid and Interface Science, 2020, 562:279-286 |
3. Qin JF, Hou S, Chen TS, et al. Ternary metal sulfides MoCoNiS derived from metal organic frameworks for efficient oxygen evolution. International Journal of Hydrogen Energy, 2020, 45:2745-2753 (ESI高被引) |
4. Qin JF, Hu SJ, Zhang XH*, et al. Hydrangea shaped bimetallic NiRu MOFs directly catalyzing highly-efffcient alkaline freshwater/seawater overall splitting based on electronic structure and oxygen vacancy modulation. Fuel, 2024, 371:132025 |
5. Qin JF, Shen QH, Du CC*, et al. Enriched Se vacancies engineering of RuSe2 induced by low-valence Cu doping for promoting hydrogen evolution and coupling power generation. Fuel, 2024, 361:130752 6. Qin JF, Wang B, Zhang YZ, et al. Construction of 1D/2D hierarchical carbon structure encapsulating FeCo alloys by one-step annealing leaf-like ZnFeCo-ZIF for highly-efffcient bifunctional oxygen electrocatalysis in reversible Zinc-air battery. Journal of Alloys and Compounds, 2024, 982:173710 7. Qin JF, Yang M, Hou S, et al. Copper and cobalt co-doped Ni3S2 grown on nickel foam for highly efficient oxygen evolution reaction. Applied Surface Science, 2020, 502:144172 8. Xue S, Qin JF, Zhang XH*, et al. In situ constructing Co/Co-Ox/Co-Nx diverse active sites on hollow porous carbon spheres derived from Co-MOF for efficient bifunctional electrocatalysis in rechargeable Zn-air. Materials Today Physics, 2023, 37:101209 9. Yan KL, Qin JF, Liu ZZ, et al. Organic-inorganic hybrids-directed ternary NiFeMoS anemone-like nanorods with scaly surface supported on nickel foam for efficient overall water splitting. Chemical Engineering Journal, 2018, 334:922-931 10. Yan KL, Qin JF, Lin JH, et al. Probing the active sites of Co3O4 for acidic oxygen evolution reaction by modulating Co2+/Co3+ ratio. Journal of Materials Chemistry A, 2018, 6:5678-5686 |