4.7 Article

Rational design of 3D N-doped graphene with a holey structure as a bifunctional electrode for sensitive methyl parathion detection and supercapacitors

Journal

DALTON TRANSACTIONS
Volume 51, Issue 41, Pages 15863-15872

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/d2dt02630a

Keywords

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Funding

  1. National Natural Science Foundation of China [51602192]
  2. Xidian University [XJS211403]
  3. Shanghai Sailing Program [20YF1416100]
  4. Class III Peak Discipline of Shanghai-Materials Science and Engineering (High-Energy Beam Intelligent Processing and Green Manufacturing)

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In this study, three-dimensional graphene with a porous structure and abundant N-doping (3d-NHG) was synthesized and its electrochemical performance was systematically investigated. The 3d-NHG not only successfully detected methyl parathion, but also showed potential in supercapacitors.
N-doped graphene with nano-sized holes possesses abundant electrochemically active sites at the exposed edge and an open porous structure, leading to a better electrochemical performance and faster electron and ion transport than the basal planes in graphene. In this study, three-dimensional graphene with a porous structure and abundant doped N (3d-NHG) were synthesized as bifunctional electrodes for methyl parathion (MP) detection and supercapacitors. The roles of N-doping and the holey construction in the electrochemical performance of the 3d-NHG were systematically investigated through a combined theory-experiment strategy. The 3d-NHG-based electrochemical sensor successfully detected methyl parathion in the range of 38 nm-380 mu M with a low detection limit (2.27 nM) and superior sensitivity. Furthermore, the 3d-NHG also demonstrated potential for use in supercapacitors with a specific capacitance of 207 F g(-1) at 1 A g(-1) and excellent rate capability (76% capacitance retention at 10 A g(-1)). Density functional theory calculations revealed that the exposed carbon sites at the edge are the reactive sites for species adsorption. Moreover, the holey structure in 3d-NHG plays a dominating role in electrochemical processes and in the enhanced electrocatalysis. This work provides guidance for the rational design of high-performance bifunctional electrodes for MP detection and supercapacitors by defect engineering.

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