Publication | Open Access
Basal Plane Hydrogen Evolution Activity from Mixed Metal Nitride MXenes Measured by Scanning Electrochemical Microscopy
98
Citations
59
References
2020
Year
Materials ScienceEngineeringBattery Electrode MaterialsMolecular ElectrochemistryMxene Basal PlaneAdvanced Electrode MaterialSurface ScienceSurface ElectrochemistryEnergy StorageNitride MxenesMixed Transition MetalHydrogenChemistryElectrochemical ProcessElectrochemical MicroscopyMxenesElectrochemistry
Abstract 2D early transition metal carbide and nitride MXenes have intriguing properties for electrochemical energy storage and electrocatalysis. These properties can be manipulated by modifying the basal plane chemistry. Here, mixed transition metal nitride MXenes, M‐Ti 4 N 3 T x (M = V, Cr, Mo, or Mn; T x = O and/or OH), are developed by modifying pristine exfoliated Ti 4 N 3 T x MXene with V, Cr, Mo, and Mn salts using a simple solution‐based method. The resulting mixed transition metal nitride MXenes contain 6–51% metal loading (cf. Ti) that exhibit rich electrochemistry including highly tunable hydrogen evolution reaction (HER) electrocatalytic activity in a 0.5 m H 2 SO 4 electrolyte as follows: V‐Ti 4 N 3 T x > Cr‐Ti 4 N 3 T x > Mo‐Ti 4 N 3 T x > Mn‐Ti 4 N 3 T x > pristine Ti 4 N 3 T x with overpotentials as low as 330 mV at −10 mA cm −2 with a charge‐transfer resistance of 70 Ω. Scanning electrochemical microscopy (SECM) reveals the electrochemical activity of individual MXene flakes. The SECM data corroborate the bulk HER activity trend for M‐Ti 4 N 3 T x as well as provide the first experimental evidence that HER results from catalysis on the MXene basal plane. These electrocatalytic results demonstrate a new pathway to tune the electrochemical properties of MXenes for water splitting and related electrochemical applications.
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