Galdeano-Ruano, Carmen, Márquez, Inmaculada, Lopes, Christian Wittee, Calvente, Juan José, Agostini, Giovanni, Roldan, Alberto ORCID: https://orcid.org/0000-0003-0353-9004, Olloqui-Sariego, José Luis and Oña-Burgos, Pascual 2024. Ultra-low metal loading rhodium phosphide electrode for efficient alkaline hydrogen evolution reaction. International Journal of Hydrogen Energy 51 (Part A) , pp. 1200-1216. 10.1016/j.ijhydene.2023.07.206 |
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Abstract
The practical production of hydrogen from water electrolyzers demands efficient electrocatalysts with maximized and optimized active sites that promote the Hydrogen Evolution Reaction (HER) at wide pH ranges. Herein, we successfully synthesized a rhodium-based nanomaterial with extremely low metal loading (2 μg/cm−2) as electrocatalyst for the HER. In particular, the material consists of carbon-supported rhodium phosphide (Rh2P) as active sites, which are partially covered with carbon patches. The so-developed nanomaterial exhibits high crystallinity, resistance to sintering, and outstanding electrocatalytic activity and operational stability in an extended pH interval. Notably, Rh2P displays specific-mass activities, ca. 2.5- and 5-fold higher than those of the benchmark 20 wt% Pt/C at an overpotential of 50 mV in acidic and alkaline media, respectively. Comparison of the electrocatalytic performance of the current Rh2P electrocatalyst with those of phosphorus-free rhodium NPs and an alternative rhodium phosphide nanomaterial, reveals that the inclusion of phosphorus atoms, the purity and crystallinity of the Rh2P phase are critical to boost the electrocatalytic HER. This is corroborated by theoretical simulations using DFT, which also prove that the presence of C-patches on Rh2P favors the H2O dissociation during HER electrocatalytic cycle and prevents phosphorous leaching. Overall, this work provides new insights for the rational design and controlled synthesis of small NPs for using as efficient electrocatalysts in hydrogen-based renewable energy devices.
Item Type: | Article |
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Date Type: | Publication |
Status: | Published |
Schools: | Chemistry Cardiff Catalysis Institute (CCI) |
Publisher: | Elsevier |
ISSN: | 0360-3199 |
Date of First Compliant Deposit: | 23 August 2023 |
Date of Acceptance: | 19 July 2023 |
Last Modified: | 15 Jan 2024 15:11 |
URI: | https://orca.cardiff.ac.uk/id/eprint/161998 |
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