A critical step in developing deployable water electrolysis technologies is the reduction in the amount of platinum group metals (PGMs) that are the most active catalysts for hydrogen and oxygen evolution. In this paper, we demonstrate a convenient strategy to reduce the PGM loading in electrolysis by using ultra-low Pd loaded electrocatalysts supported on 3D architectures of titania (TiO2) nanotubes. This manuscript focuses on the following aspects: 1) a comprehensive analysis of the synthesis of the TiO2 support using water-based electrolytes; 2) the deposition of Pd catalyst to the support by either physical vapour deposition or dropcast and 3) functional characterisation of the obtained materials for hydrogen and oxygen evolution in both acidic and alkaline environments. A new strategy is developed to obtain short low aspect ratio 3D titania nanotubes arrays (TNTA) and we demonstrate that an extremely low quantity of Pd (81 µg cm-2) is sufficient to obtain significant activity improvement in an Anion Exchange Membrane (AEM) water electrolyser.

3D Titania Nanotube Array Support for Water Electrolysis Palladium Catalysts

M. Bellini;E. Berretti;M. Innocenti;M. V. Pagliaro;L. Poggini;H. A. Miller;A. Lavacchi;F. Vizza
2021

Abstract

A critical step in developing deployable water electrolysis technologies is the reduction in the amount of platinum group metals (PGMs) that are the most active catalysts for hydrogen and oxygen evolution. In this paper, we demonstrate a convenient strategy to reduce the PGM loading in electrolysis by using ultra-low Pd loaded electrocatalysts supported on 3D architectures of titania (TiO2) nanotubes. This manuscript focuses on the following aspects: 1) a comprehensive analysis of the synthesis of the TiO2 support using water-based electrolytes; 2) the deposition of Pd catalyst to the support by either physical vapour deposition or dropcast and 3) functional characterisation of the obtained materials for hydrogen and oxygen evolution in both acidic and alkaline environments. A new strategy is developed to obtain short low aspect ratio 3D titania nanotubes arrays (TNTA) and we demonstrate that an extremely low quantity of Pd (81 µg cm-2) is sufficient to obtain significant activity improvement in an Anion Exchange Membrane (AEM) water electrolyser.
2021
Istituto di Chimica dei Composti OrganoMetallici - ICCOM -
Inglese
383
138338
138338
11
https://www.sciencedirect.com/science/article/pii/S0013468621006289
Esperti anonimi
Titania
nanotubes
electrochemistry
AEM
No
9
info:eu-repo/semantics/article
262
Bellini, M.; Berretti, E.; Innocenti, M.; Magherini, G.; Pagliaro, M. V.; Poggini, L.; Miller, H. A.; Lavacchi, A.; Vizza, F.
01 Contributo su Rivista::01.01 Articolo in rivista
partially_open
   POR FESR 2014-2020, FELIX (Fotonica ed Elettronica Integrate per l’Industria)
   FELIX
   Regione Toscana
   Fondo Europeo di Sviluppo Regionale POR-CREO 2014-2020.
   Grant Number 6455

   FISR 2019 project AMPERE (FISR2019_01294)
   AMPERE
   Ministero dell'Università e della Ricerca
   FISR 2019
   FISR2019_01294

   PRIN 2017YH9MRK
   PRIN 2017
   Ministero dell'Università e della Ricerca (MUR)
   PRIN 2017
   2017YH9MRK
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/20.500.14243/395032
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