α-Fe 2 O 3 /, Co 3 O 4 /, and CoFe 2 O 4 /MWCNTs/Ionic Liquid Nanocomposites as High-Performance Electrocatalysts for the Electrocatalytic Hydrogen Evolution Reaction in a Neutral Medium.
José IbarraMaria Jesus AguirreRodrigo Del RíoRodrigo HenríquezRicardo FaccioEnrique A DalchieleRoxana ArceGalo RamírezPublished in: International journal of molecular sciences (2024)
Transition metal oxides are a great alternative to less expensive hydrogen evolution reaction (HER) catalysts. However, the lack of conductivity of these materials requires a conductor material to support them and improve the activity toward HER. On the other hand, carbon paste electrodes result in a versatile and cheap electrode with good activity and conductivity in electrocatalytic hydrogen production, especially when the carbonaceous material is agglomerated with ionic liquids. In the present work, an electrode composed of multi-walled carbon nanotubes (MWCNTs) and cobalt ferrite oxide (CoFe 2 O 4 ) was prepared. These compounds were included on an electrode agglomerated with the ionic liquid N-octylpyridinium hexafluorophosphate (IL) to obtain the modified CoFe 2 O 4 /MWCNTs/IL nanocomposite electrode. To evaluate the behavior of each metal of the bimetallic oxide, this compound was compared to the behavior of MWCNTs/IL where a single monometallic iron or cobalt oxides were included (i.e., α-Fe 2 O 3 /MWCNTs/IL and Co 3 O 4 /MWCNTs/IL). The synthesis of the oxides has been characterized by X-ray diffraction (XRD), RAMAN spectroscopy, and field emission scanning electronic microscopy (FE-SEM), corroborating the nanometric character and the structure of the compounds. The CoFe 2 O 4 /MWCNTs/IL nanocomposite system presents excellent electrocatalytic activity toward HER with an onset potential of -270 mV vs. RHE, evidencing an increase in activity compared to monometallic oxides and exhibiting onset potentials of -530 mV and -540 mV for α-Fe 2 O 3 /MWCNTs/IL and Co 3 O 4 /MWCNTs/IL, respectively. Finally, the system studied presents excellent stability during the 5 h of electrolysis, producing 132 μmol cm -2 h -1 of hydrogen gas.
Keyphrases
- ionic liquid
- walled carbon nanotubes
- reduced graphene oxide
- carbon nanotubes
- room temperature
- metal organic framework
- high resolution
- raman spectroscopy
- solid state
- magnetic resonance imaging
- transition metal
- computed tomography
- magnetic resonance
- mass spectrometry
- contrast enhanced
- high speed
- single molecule
- oxide nanoparticles