4.7 Article Proceedings Paper

Nitrogen-self doped activated carbon nanosheets derived from peanut shells for enhanced hydrogen evolution reaction

Journal

APPLIED SURFACE SCIENCE
Volume 489, Issue -, Pages 725-733

Publisher

ELSEVIER
DOI: 10.1016/j.apsusc.2019.06.040

Keywords

Biomass; Peanut shell; Carbon nanomaterials; Electrocatalyst; Modified electrode; Hydrogen evolution reaction

Funding

  1. DST-FIST [SR/FST/CST-266/2015(c)]
  2. Ministry of New and Renewable Energy India, Govt. of India [31/03/2014-15/PVSE-RD]

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Herein, we demonstrate a facile synthesis of peanut shell-derived activated carbon nanosheets using a facile thermal technique aided by chemical activation process for improved hydrogen evolution reaction (HER). The obtained activated carbon nanosheets show a multilayer sheet-like morphology with a highly porous nature and possess a very high surface area of similar to 2338 m(2) g(-1). The physiochemical analysis reveals that the catalytically active sites are associated with the prepared activated carbon nanosheets. The as-prepared activated carbon material employs as a potential metal-free electrocatalyst for H-2 production under acidic electrolyte, exhibiting superior electrocatalytic performance with a less negative onset potential of 0.08 V Vs. RHE with low over-potential (eta) response, small Tafel slope, and long-term stability. The enhanced HER activity of the developed activated carbon is attributed to high BET specific surface area, high porous nature and two-dimensional structure, employing as an encouraging impeccable metal-free HER catalyst. For the first time, we have successfully analysed and reporting an excellent electrocatalytic activity towards H-2 production by activated carbon derived from peanut shell biomass.

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