TY - JOUR
T1 - Dyadic Ru-based nanomaterials for visible light-driven photocatalytic hydrogen evolution
AU - Martí, Gerard
AU - Alique, Marc
AU - López, Isidoro
AU - Francàs, Laia
AU - Bofill, Roger
AU - Schott, Olivier
AU - Hanan, Garry S.
AU - Lozano-Roche, Álvaro
AU - Romero, Nuria
AU - Philippot, Karine
AU - Llobet, Antoni
AU - Natali, Mirco
AU - García-Antón, Jordi
AU - Sala, Xavier
N1 - Publisher Copyright:
© 2025
PY - 2026/1/30
Y1 - 2026/1/30
N2 - Visible light-driven water splitting is an appealing strategy to store renewable energy in the chemical bonds of molecular hydrogen. In this regard, the development of photocatalytic architectures where charge transfer and recombination can be controlled represents a key challenge. The surface functionalization of Ru/RuO nanoparticles (NPs) with the [Ru(2,2'-bpy)(qpy)](PF) photosensitizer (PS), yielding PS-NPs "dyadic" hybrid nanomaterials, represents a promising strategy. Four HER photocatalysts with different PS:NPs ratios are synthesized and thoroughly characterized by analytical and spectroscopic techniques. X-ray photoelectron spectroscopy (XPS) reveals the covalent binding of the PS to the NPs surface. Analysis of the photocatalytic performance in aqueous triethanolamine (TEOA) shows that the activation of the nanocatalyst (RuO reduction) and the hydrogen evolution rate improves when the PS loading increases. Under visible-light irradiation, the nanomaterials with higher PS loading show sustained production of hydrogen for at least 80 h. The morphological and compositional evolution of the hybrid nanomaterials under photocatalytic conditions is studied and correlated with hydrogen production rates over time, pointing to a sequential leaching of PS from the nanomaterials surface. Additionally, photophysical experiments allow attaining an insight into the photochemical mechanism, which involves oxidative quenching with a fast electron injection, but also fast back electron transfer.
AB - Visible light-driven water splitting is an appealing strategy to store renewable energy in the chemical bonds of molecular hydrogen. In this regard, the development of photocatalytic architectures where charge transfer and recombination can be controlled represents a key challenge. The surface functionalization of Ru/RuO nanoparticles (NPs) with the [Ru(2,2'-bpy)(qpy)](PF) photosensitizer (PS), yielding PS-NPs "dyadic" hybrid nanomaterials, represents a promising strategy. Four HER photocatalysts with different PS:NPs ratios are synthesized and thoroughly characterized by analytical and spectroscopic techniques. X-ray photoelectron spectroscopy (XPS) reveals the covalent binding of the PS to the NPs surface. Analysis of the photocatalytic performance in aqueous triethanolamine (TEOA) shows that the activation of the nanocatalyst (RuO reduction) and the hydrogen evolution rate improves when the PS loading increases. Under visible-light irradiation, the nanomaterials with higher PS loading show sustained production of hydrogen for at least 80 h. The morphological and compositional evolution of the hybrid nanomaterials under photocatalytic conditions is studied and correlated with hydrogen production rates over time, pointing to a sequential leaching of PS from the nanomaterials surface. Additionally, photophysical experiments allow attaining an insight into the photochemical mechanism, which involves oxidative quenching with a fast electron injection, but also fast back electron transfer.
KW - Dyads
KW - Hybrid nanomaterials
KW - Hydrogen evolution reaction
KW - Organometallic approach
KW - Photocatalysis
KW - Ruthenium nanoparticles
UR - https://www.mendeley.com/catalogue/5d740cbf-6e64-387a-8a5b-32f78d0187bc/
UR - https://portalrecerca.uab.cat/en/publications/ab603685-963c-47b6-b696-b8e791b60ff7
U2 - 10.1016/j.apsusc.2025.164621
DO - 10.1016/j.apsusc.2025.164621
M3 - Article
AN - SCOPUS:105016314875
SN - 0169-4332
VL - 716
JO - Applied Surface Science
JF - Applied Surface Science
M1 - 164621
ER -