Nanoscale Carbon Modified α-MnO Nanowires: Highly Active and Stable Oxygen Reduction Electrocatalysts with Low Carbon Content.

ACS Appl Mater Interfaces

Department of Materials, Devices & Energy Technologies, ‡Nanostructure Physics & Center for Integrated Nanotechnologies, and §Nanoscale Sciences Department, Sandia National Laboratories , Albuquerque, New Mexico 87185, United States.

Published: January 2018

Carbon-coated α-MnO nanowires (C-MnO NWs) were prepared from α-MnO NWs by a two-step sucrose coating and pyrolysis method. This method resulted in the formation of a thin, porous, low mass-percentage amorphous carbon coating (<5 nm, ≤1.2 wt % C) on the nanowire with an increase in single-nanowire electronic conductivity of roughly 5 orders of magnitude (α-MnO, 3.2 × 10 S cm; C-MnO, 0.52 S cm) and an increase in surface Mn (average oxidation state: α-MnO, 3.88; C-MnO, 3.66) while suppressing a phase change to MnO at high temperature. The enhanced physical and electronic properties of the C-MnO NWs-enriched surface Mn and high conductivity-are manifested in the electrocatalytic activity toward the oxygen reduction reaction (ORR), where a 13-fold increase in specific activity (α-MnO, 0.13 A m; C-MnO, 1.70 A m) and 6-fold decrease in charge transfer resistance (α-MnO, 6.2 kΩ; C-MnO, 0.9 kΩ) were observed relative to the precursor α-MnO NWs. The C-MnO NWs, composed of ∼99 wt % MnO and ∼1 wt % carbon coating, also demonstrated an ORR onset potential within 20 mV of commercial 20% Pt/C and a chronoamperometric current/stability equal to or greater than 20% Pt/C at high overpotential (0.4 V vs RHE) and high temperature (60 °C) with no additional conductive carbon.

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Source
http://dx.doi.org/10.1021/acsami.7b16576DOI Listing

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