期刊文献+

Synthesis of size-controlled CoMn2O4 quantum dots supported on carbon nanotubes for electrocatalytic oxygen reduction/evolution 被引量:3

Synthesis of size-controlled CoMn2O4 quantum dots supported on carbon nanotubes for electrocatalytic oxygen reduction/evolution
原文传递
导出
摘要 A combined hot-injection and heat-up method was developed to synthesize monodisperse and uniform CoMn2O4 quantum dots (CMO QDs).CMO QDs with average size of 2.0,3.9,and 5.4 nm were selectively obtained at 80,90,and 105 ℃,respectively.The CMO QDs supported on carbon nanotubes (CNTs) were employed as catalysts for the oxygen reduction/evolution reaction (ORR/OER) in alkaline solution to investigate their size-performance relationship.The results revealed that the amount of surface-adsorbed oxygen and the band gap energy,which affect the charge transfer in the oxygen electrocatalysis processes,strongly depend on the size of the CMO QDs.The CMO-3.9/CNT hybrid,consisting of CNT-supported CMO QDs of 3.9 nm size,possesses a moderate amount of surfaceadsorbed oxygen,a lower band gap energy,and a larger charge carrier concentration,and exhibits the highest electrocatalytic activity among the hybrid materials investigated.Moreover,the CMO-3.9/CNT hybrid displays ORR and OER performances similar to those of the benchmark Pt/C and RuO2 catalysts,respectively,due to the strong carbon-oxide interactions and the high dispersion of CoMn2O4 QDs on the carbon substrate;this reveals the huge potential of the CMO-3.9/CNT hybrid as a bifunctional OER/ORR electrocatalyst.The present results highlight the importance of controlling the size of metal oxide nanodots in the design of active oxygen electrocatalysts based on spinel-type,nonprecious metal oxides. A combined hot-injection and heat-up method was developed to synthesize monodisperse and uniform CoMn2O4 quantum dots (CMO QDs).CMO QDs with average size of 2.0,3.9,and 5.4 nm were selectively obtained at 80,90,and 105 ℃,respectively.The CMO QDs supported on carbon nanotubes (CNTs) were employed as catalysts for the oxygen reduction/evolution reaction (ORR/OER) in alkaline solution to investigate their size-performance relationship.The results revealed that the amount of surface-adsorbed oxygen and the band gap energy,which affect the charge transfer in the oxygen electrocatalysis processes,strongly depend on the size of the CMO QDs.The CMO-3.9/CNT hybrid,consisting of CNT-supported CMO QDs of 3.9 nm size,possesses a moderate amount of surfaceadsorbed oxygen,a lower band gap energy,and a larger charge carrier concentration,and exhibits the highest electrocatalytic activity among the hybrid materials investigated.Moreover,the CMO-3.9/CNT hybrid displays ORR and OER performances similar to those of the benchmark Pt/C and RuO2 catalysts,respectively,due to the strong carbon-oxide interactions and the high dispersion of CoMn2O4 QDs on the carbon substrate;this reveals the huge potential of the CMO-3.9/CNT hybrid as a bifunctional OER/ORR electrocatalyst.The present results highlight the importance of controlling the size of metal oxide nanodots in the design of active oxygen electrocatalysts based on spinel-type,nonprecious metal oxides.
出处 《Nano Research》 SCIE EI CAS CSCD 2017年第11期3836-3847,共12页 纳米研究(英文版)
基金 This work was supported by the National Key Research and Development Program of China (Nos. 2016YFA0202500 and 2016YFB0101201), the National Natural Science Foundation of China (Nos. 21322101 and 21231005) and 111 Project (Nos. B12015 and IRT13R30).
关键词 size effect spinel oxide quantum dots ELECTROCATALYSIS size effect,spinel oxide,quantum dots,electrocatalysis
分类号 O [理学]
  • 相关文献

参考文献5

二级参考文献64

  • 1Wu, G.; Zelenay, P. Nanostructured nonprecious metal catalysts for oxygen reduction reaction. Acc. Chem. Res. 2013, 46, 1878-1889.
  • 2Oh, S.; Black, R.; Pomerantseva, E.; Lee, J.; Nazar, L. Synthesis of a metallic mesoporous pyrochlore as a catalyst for lithium2 batteries. Nat. Chem. 2012, 4, 1004-1010.
  • 3Kiros, Y.; Pirjamali, M.; Bursell, M. Oxygen reduction electrodes for electrolysis in chlor-alkali cells. Electrochim.Acta. 2006, 51, 3346-3350.
  • 4Tiwari, J.; Tiwari, R.; Singh, G.; Kim, K. Recent progress in the development of anode and cathode catalysts for direct methanol fuel cells. Nano Energy 2013, 2, 553-578.
  • 5Liang, H.; Wei, W.; Wu, Z.; Feng, X.; M/illen, K. Mesoporous metal-nitrogen-doped carbon electrocatalysts for highly efficient oxygen reduction reaction. J. Am. Chem. Soc. 2013, 135, 16002-16005.
  • 6Vujkovir, M.; Gavrilov, N.; Patti, I.; Krstir, J.; Travas- Sejdic, J.; Girid-Marjanovid, G.; Mentus, S. Superior capacitive and electrocatalytic properties of carbonized nanostructured polyaniline upon a low-temperature hydrothermal treatment. Carbon 2013, 64, 472-486.
  • 7Topalov, A.; Katsounaros, I.; Auinger, M.; Cherevko, S.; Meier, J.; Klemm, S.; Mayrhofer, K. Dissolution of platinum: Limits for the deployment of electrochemical energy conversion? Angew. Chem. Int. Ed. 2012, 51, 12613-12615.
  • 8Nesselberger, M.; Roefzaad, M.; Hamou, R.; Biedermarm, P.; Schweinberger, F.; Kunz, S.; Schloegl, K.; Wiberg, G.; Ashton, S.; Heiz, U. et al. The effect of particle proximity on the oxygen reduction rate of size-selected platinum clusters. Nat. Mater. 2013, 12, 919-924.
  • 9Wu, J.; Yang, H. Platinum-based oxygen reduction electro- catalysts. Acc. Chem. Res. 2013, 46, 1848-1857.
  • 10Zhang, X.; Lu, G. Computational design of core/shell nanoparticles for oxygen reduction reactions. J. Phys. Chem. Lett. 2014, 5, 292-297.

共引文献26

同被引文献17

引证文献3

二级引证文献8

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部