AI Article Synopsis

  • Phosphorene, a two-dimensional nanomaterial, shows potential for improving electrocatalytic activity in oxygen evolution reactions (OER) but requires controlled synthesis of few-layered structures for better performance.
  • A new method for creating phosphorene quantum dots (PQDs) through a single-step electrochemical exfoliation allows for in situ surface functionalization, enhancing their electrocatalytic activity.
  • Functionalized phosphorene quantum dots (FPQDs) demonstrate efficient OER performance with low overpotential and Tafel slope, while exhibiting stronger electron transfer kinetics, making them promising materials for water-splitting devices.

Article Abstract

Phosphorene has attracted great interest in the rapidly emerging field of two-dimensional layered nanomaterials. Recent studies show promising electrocatalytic activity of few-layered phosphorene sheets toward the oxygen evolution reaction (OER). However, controllable synthesis of mono/few-layered phosphorene nanostructures with a large number of electrocatalytically active sites and exposed surface area is important to achieve significant enhancement in OER activity. Here, a novel strategy for controlled synthesis and in situ surface functionalization of phosphorene quantum dots (PQDs) using a single-step electrochemical exfoliation process is demonstrated. Phosphorene quantum dots functionalized with nitrogen-containing groups (FPQDs) exhibit efficient and stable electrocatalytic activity for OER with an overpotential of 1.66 V @ 10 mA cm, a low Tafel slope of 48 mV dec, and excellent stability. Further, we observe enhanced electron transfer kinetics for FPQDs toward the Fe/Fe redox probe in comparison with pristine PQDs. The results demonstrate the promising potential of phosphorene as technologically viable OER electrodes for water-splitting devices.

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Source
http://dx.doi.org/10.1021/acsnano.8b06671DOI Listing

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