• 文献标题:   Nitrogen Doped Graphene-Rich Catalysts Derived from Heteroatom Polymers for Oxygen Reduction in Nonaqueous Lithium-O-2 Battery Cathodes
  • 文献类型:   Article
  • 作  者:   WU G, MACK NH, GAO W, MA SG, ZHONG RQ, HAN JT, BALDWIN JK, ZELENAY P
  • 作者关键词:   graphene, nitrogen doping, heteroatom polymer, nonpreciousmetal catalyst, oxygen reduction, lio2 battery
  • 出版物名称:   ACS NANO
  • ISSN:   1936-0851 EI 1936-086X
  • 通讯作者地址:   Los Alamos Natl Lab
  • 被引频次:   341
  • DOI:   10.1021/nn303275d
  • 出版年:   2012

▎ 摘  要

In this work, we present a synthesis approach for nitrogen-doped graphene-Sheet-like nanostructures via the graphitization of a heteroatom polymer, in particular, polyaniline, under the catalysis of a cobalt species using multiwalled carbon nanotubes (MWNTs) as a supporting template. The graphene-rich composite catalysts (Co-N-MWNTs) exhibit substantially improved activity for oxygen reduction in nonaqueous lithium-Ion electrolyte as compared to those of currently used carbon blacks and Pt/carbon catalysts, evidenced by both rotating disk electrode and Li-O-2 battery experiments. The synthesis-structure-activity correlations for the graphene nanostructures were explored by tuning their synthetic chemistry (support, nitrogen precursor, heating temperature, and transition metal type and content) to investigate how the resulting morphology and nitrogen-doping functionalities (e.g., pyridinic, pyrrolic, and quaternary) influence the catalyst activity. In particular, an optimal. temperature for heat treatment during synthesis is critical to creating a high-surface-area catalyst with favorable nitrogen doping. The sole Co phase, Co9S8, was present In the catalyst but plays a negligible role in 'ORR. Nevertheless; the addition of Co species in the synthesis is indispensable for achieving high activity, due to its effects on the final catalyst morphology and structure, Including surface area, nitrogen doping, and graphene formation. This new route for the preparation of a nitrogen-doped graphene nanocomposite with carbon nanotube offers synthetic control of morphology and. nitrogen functionality and shows promise for applications in nonaqueous oxygen reduction electrocatalysis for Li-O-2 battery cathodes.