We present a tunable nanostructured material platform based on atomic layer deposition (ALD) of nickel oxide and platinum onto titania nanotube (TiNT) arrays embedded in a porous titanium web. The hierarchical architecture enables precise control over phase dispersion and interfacial chemistry, with NiO adopting a predominantly Ni(OH)2-like local environment and co-deposited Pt stabilized as highly dispersed species. ALD cycle tuning allows systematic modulation of oxide-metal interactions, providing a versatile framework for designing low-loading noble-metal catalysts. When applied to the hydrogen evolution reaction in alkaline media, these materials show enhanced activity driven by optimized NiOx coverage and improved Pt dispersion, achieving near-Pt performance at drastically reduced Pt loading. Tafel analysis confirms a Volmer-Heyrovsky pathway, with Ni(OH)2 sites promoting proton transfer and facilitating hydrogen desorption at Pt. This work demonstrates how ALD-engineered embedded nanostructures can underpin next-generation electrocatalyst architectures.

ALD of NiO and Pt on TiO2 nanotube arrays integrated into titanium porous transport layers for dispersion controlled electrocatalysts / Filippi, J., Calisi, N., Capozzoli, L., Caporali, S., D'Acapito, F., Orsilli, J., Perissi, I., Santoro, C., Muhyuddin, M., Vizza, F., Qin, Y., Zhang, J., Lavacchi, A., Berretti, E.. - In: NANOSCALE. - ISSN 2040-3364. - STAMPA. - 7:(2026), pp. 1-14. [10.1039/d5nr05314e]

ALD of NiO and Pt on TiO2 nanotube arrays integrated into titanium porous transport layers for dispersion controlled electrocatalysts

Filippi, Jonathan
Membro del Collaboration Group
;
Calisi, N.
Membro del Collaboration Group
;
Capozzoli, L.
Membro del Collaboration Group
;
Caporali, S.
Membro del Collaboration Group
;
Perissi, I.
Membro del Collaboration Group
;
Vizza, F.
Membro del Collaboration Group
;
Lavacchi, A.
Conceptualization
;
Berretti, Enrico
Membro del Collaboration Group
2026

Abstract

We present a tunable nanostructured material platform based on atomic layer deposition (ALD) of nickel oxide and platinum onto titania nanotube (TiNT) arrays embedded in a porous titanium web. The hierarchical architecture enables precise control over phase dispersion and interfacial chemistry, with NiO adopting a predominantly Ni(OH)2-like local environment and co-deposited Pt stabilized as highly dispersed species. ALD cycle tuning allows systematic modulation of oxide-metal interactions, providing a versatile framework for designing low-loading noble-metal catalysts. When applied to the hydrogen evolution reaction in alkaline media, these materials show enhanced activity driven by optimized NiOx coverage and improved Pt dispersion, achieving near-Pt performance at drastically reduced Pt loading. Tafel analysis confirms a Volmer-Heyrovsky pathway, with Ni(OH)2 sites promoting proton transfer and facilitating hydrogen desorption at Pt. This work demonstrates how ALD-engineered embedded nanostructures can underpin next-generation electrocatalyst architectures.
2026
7
1
14
Goal 9: Industry, Innovation, and Infrastructure
Goal 12: Responsible consumption and production
Filippi, Jonathan; Calisi, N.; Capozzoli, L.; Caporali, S.; D'Acapito, F.; Orsilli, J.; Perissi, I.; Santoro, C.; Muhyuddin, M.; Vizza, F.; Qin, Y.; Z...espandi
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Utilizza questo identificatore per citare o creare un link a questa risorsa: https://hdl.handle.net/2158/1480392
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