TY - JOUR
T1 - Improving the electrocatalytic activity of Pd nanoparticles through electronic coupling interaction with a Ni2P-MoS2 hybrid support for ethanol electro-oxidation in an alkaline medium
AU - Matthews, Thabo
AU - Chabalala, Makhaokane Paulina
AU - Mbokazi, Siyabonga Patrick
AU - Zikhali, Memory
AU - Dolla, Tarekegn Heliso
AU - Šarakovskis, Anatolijs
AU - Vaivars, Guntars
AU - Yusuf, Tunde Lewis
AU - Mohamed, Rhiyaad
AU - Maxakato, Nobanathi Wendy
N1 - Publisher Copyright:
© 2025 The Royal Society of Chemistry.
PY - 2025
Y1 - 2025
N2 - To improve the performance of direct ethanol fuel cells (DEFCs), which are hindered by traditional catalysts, having matters pertaining to stability, activity, and selectivity in reaction environments, various electrocatalysts such as Pd/Ni2P, Pd/MoS2, and Pd/Ni2P-MoS2 were synthesized using the microwave-assisted NaBH4-ethylene glycol reduction method. The research findings suggest that the Pd/Ni2P-MoS2 catalyst we developed had the highest activity (1579 mA mgPd−1), approximately 21 times greater than that of commercial Pd/C. The stability of the electrocatalysts were examined using chronoamperometry (CA) and cyclic voltammetry (CV) measurements, which indicated that the Pd/Ni2P-MoS2 electrocatalyst had good stability towards the ethanol oxidation reaction (EOR) in alkaline electrolyte. Electrochemical impedance spectroscopy (EIS) analysis showed that the Pd/Ni2P-MoS2 electrocatalyst had lower charge transfer resistance, indicating better electrochemical kinetics. According to XRD, HR-TEM, XPS, and electrochemical analysis, the enhanced electrocatalytic activity, long-term stability of the Pd/Ni2P-MoS2 electrocatalyst were attributable to the interface synergism as well as electronic and strain effects between the Pd, Ni2P, and MoS2 interactions. This resulted in a downshift in the d-band center of the Pd/Ni2P-MoS2 electrocatalyst, weakening intermediate adsorption and the adsorbate metal interaction.
AB - To improve the performance of direct ethanol fuel cells (DEFCs), which are hindered by traditional catalysts, having matters pertaining to stability, activity, and selectivity in reaction environments, various electrocatalysts such as Pd/Ni2P, Pd/MoS2, and Pd/Ni2P-MoS2 were synthesized using the microwave-assisted NaBH4-ethylene glycol reduction method. The research findings suggest that the Pd/Ni2P-MoS2 catalyst we developed had the highest activity (1579 mA mgPd−1), approximately 21 times greater than that of commercial Pd/C. The stability of the electrocatalysts were examined using chronoamperometry (CA) and cyclic voltammetry (CV) measurements, which indicated that the Pd/Ni2P-MoS2 electrocatalyst had good stability towards the ethanol oxidation reaction (EOR) in alkaline electrolyte. Electrochemical impedance spectroscopy (EIS) analysis showed that the Pd/Ni2P-MoS2 electrocatalyst had lower charge transfer resistance, indicating better electrochemical kinetics. According to XRD, HR-TEM, XPS, and electrochemical analysis, the enhanced electrocatalytic activity, long-term stability of the Pd/Ni2P-MoS2 electrocatalyst were attributable to the interface synergism as well as electronic and strain effects between the Pd, Ni2P, and MoS2 interactions. This resulted in a downshift in the d-band center of the Pd/Ni2P-MoS2 electrocatalyst, weakening intermediate adsorption and the adsorbate metal interaction.
UR - http://www.scopus.com/inward/record.url?scp=85219725353&partnerID=8YFLogxK
U2 - 10.1039/d4se01223b
DO - 10.1039/d4se01223b
M3 - Article
AN - SCOPUS:85219725353
SN - 2398-4902
JO - Sustainable Energy and Fuels
JF - Sustainable Energy and Fuels
ER -