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Complementary behaviour of EDL and HER activity in functionalized graphene nanoplatelets. | LitMetric

AI Article Synopsis

  • - Green hydrogen production is essential for developing a hydrogen-based economy, primarily through water electrolysis using renewable energy sources and solar-to-hydrogen conversion.
  • - The study explores how functionalizing graphene nanoplatelets (GNPs) can enhance their catalytic properties for the hydrogen evolution reaction (HER), revealing an inverse relationship between catalytic activity and the strength of the electrical double layer.
  • - Using density functional theory (DFT) modeling, researchers explain the electrocatalytic activity and suggest that reducing the electrical double layer strength could improve the catalysts' performance in hydrogen production.

Article Abstract

Green hydrogen production is a vital requirement of the upcoming hydrogen fuel-based locomotion and economy. Water electrolysis facilitated by electricity derived from renewable sources and direct solar-to-hydrogen conversion centred on photochemical and photoelectrochemical water splitting is a promising pathway for sustainable hydrogen production. All these methods require a highly active noble metal catalyst to make the water-splitting process more energy-efficient and in order to make it economical, metal-free hydrogen evolution catalysts such as graphene nanoplatelets (GNPs) are essential. Herein, we report the effect of a range of functionalizations on the catalytic properties of graphene nanoplatelets (GNPs) for the hydrogen evolution reaction (HER). We also account for the effect of functionalization on the strength of the electrical double layer formation on the surface of functionalized GNPs. It is observed that the catalytic activity and the electrical double layer strength are inversely related to each other. Our first-principles-based density functional theoretical (DFT) modelling unravels the origin of the observed electrocatalytic activity and its trend and the strength of the electrical double layers in terms of free energy changes during the ion absorption/desorption events on the electrode surface. Based on our observations, minimizing the electrical double layer strength is identified as an approach to improve the catalytic performance of the catalysts.

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Source
http://dx.doi.org/10.1039/c9nr08102jDOI Listing

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