April 18, 2017
Journal Article

Self-Assembled Fe-N-Doped Carbon Nanotube Aerogels with Single-Atom Catalysis Feature as Highly Efficient Oxygen Reduction Electrocatalysts

Abstract

Finely controlled synthesis of high active and robust non-precious metal catalysts with excellent electrocatalytic efficiency towards oxygen reduction reaction is extremely vital for successful implementation of fuel cells and metal batteries. Unprecedented oxygen reduction reaction electrocatalytic performances and the diversified synthetic procedure in term of favorable structure/morphology characteristics make transition metals-derived M–N–C (M=Fe, Co) structures the most promising nanocatalysts. Herein, using the nitrogen-containing small molecular and inorganic salt as precursors and ultrathin tellurium nanowires as templates, we successfully synthesized a series of well-defined M-N-doped hollow carbon nanowire aerogels through one step hydrothermal route and subsequent facile annealing treatment. Taking advantage of the porous nanostructures, one-dimensional building block as well as homogeneity of active sites, the resultant Fe-N-doped carbon hollow nanowire aerogels exhibited excellent ORR electrocatalytic performance even better than commercial Pt/C in alkaline solution, holding great potential in fuel cell applications.

Revised: April 13, 2020 | Published: April 18, 2017

Citation

Zhu C., S. Fu, J. Song, Q. Shi, D. Su, M.H. Engelhard, and X. Li, et al. 2017. Self-Assembled Fe-N-Doped Carbon Nanotube Aerogels with Single-Atom Catalysis Feature as Highly Efficient Oxygen Reduction Electrocatalysts. Small 13, no. 15:Article No. 1603407. PNNL-SA-119038. doi:10.1002/smll.201603407