TY - JOUR
T1 - Effect of Nitrogen and Phosphorus Doping of Reduced Graphene Oxide in the Hydrogen Evolution Catalytic Activity of Supported Ru Nanoparticles
AU - Mallón, Laura
AU - Navarro-Ruiz, Javier
AU - Cerezo-Navarrete, Christian
AU - Romero, Nuria
AU - Rosal, Iker Del
AU - García-Antón, Jordi
AU - Bofill, Roger
AU - Martínez-Prieto, Luis Miguel
AU - PHILIPPOT, Karine
AU - Poteau, Romuald
AU - Sala, Xavier
N1 - Publisher Copyright:
© 2025 American Chemical Society.
PY - 2025/1/20
Y1 - 2025/1/20
N2 - Three different cathodic materials for the hydrogen evolution reaction (HER) consisting of Ru nanoparticles (NPs) supported onto a bare and two doped reduced graphene oxides (r-GO) have been studied. Ru NPs have been synthesized in situ by means of the organometallic approach in the presence of each reduced graphene support (bare (rGO), N-doped (NH2-rGO) and P-doped (P-rGO)). (HR)TEM, EDX, EA, ICP-OES, XPS, Raman and NMR techniques have been used to fully characterize the obtained rGO-supported Ru materials. These materials have been deposited onto a glassy carbon rotating disk electrode (GC-RDE) to assess their HER electrocatalytic activity at acidic pH. The results show that all three materials are stable under reductive conditions for at least 12 h, and that the heteroatom-doping of the graphene structure extremely increases the activity of the electrodes, especially for the case of Ru@P-rGO, where the overpotential at −10 mA·cm–2 decreases to only 2 mV. Realistic (based on experimental compositional data) modeling of the three rGO supports combined with DFT computational analysis of the electronic and electrocatalytic properties of the hybrid nanocatalysts allows attributing the observed electrocatalytic performances to a combination of interrelated factors such as the distance of the Ru atoms to the dopped rGO support and the hydride content at the Ru NP surface.
AB - Three different cathodic materials for the hydrogen evolution reaction (HER) consisting of Ru nanoparticles (NPs) supported onto a bare and two doped reduced graphene oxides (r-GO) have been studied. Ru NPs have been synthesized in situ by means of the organometallic approach in the presence of each reduced graphene support (bare (rGO), N-doped (NH2-rGO) and P-doped (P-rGO)). (HR)TEM, EDX, EA, ICP-OES, XPS, Raman and NMR techniques have been used to fully characterize the obtained rGO-supported Ru materials. These materials have been deposited onto a glassy carbon rotating disk electrode (GC-RDE) to assess their HER electrocatalytic activity at acidic pH. The results show that all three materials are stable under reductive conditions for at least 12 h, and that the heteroatom-doping of the graphene structure extremely increases the activity of the electrodes, especially for the case of Ru@P-rGO, where the overpotential at −10 mA·cm–2 decreases to only 2 mV. Realistic (based on experimental compositional data) modeling of the three rGO supports combined with DFT computational analysis of the electronic and electrocatalytic properties of the hybrid nanocatalysts allows attributing the observed electrocatalytic performances to a combination of interrelated factors such as the distance of the Ru atoms to the dopped rGO support and the hydride content at the Ru NP surface.
KW - DFT simulations
KW - N-doping
KW - P-doping
KW - Ru nanoparticles
KW - hydrogen evolution reaction
KW - reduced graphene oxide
UR - http://www.scopus.com/inward/record.url?scp=85215578495&partnerID=8YFLogxK
UR - https://www.mendeley.com/catalogue/b5134466-6db8-305f-b477-422456e592c0/
U2 - 10.1021/acsami.4c15547
DO - 10.1021/acsami.4c15547
M3 - Article
C2 - 39831424
SN - 1944-8244
VL - 17
SP - 6198
EP - 6210
JO - ACS applied materials & interfaces
JF - ACS applied materials & interfaces
IS - 4
ER -