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Tailoring the Transport Properties of Mesoporous Doped Cerium Oxide for Energy Applications

Hard-template nanocasted mesoporous cerium oxide possesses a unique combination of thermal stability, high surface area, and short diffusion lengths for mass and gas transport, which makes it relevant for high-temperature catalysis, sensing, and electrochemical applications. Here, we present an in-d...

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Published in:Journal of physical chemistry. C 2021-08, Vol.125 (30), p.16451-16463
Main Authors: Baiutti, Federico, Blanco-Portals, Javier, Anelli, Simone, Torruella, Pau, López-Haro, Miguel, Calvino, José, Estradé, Sonia, Torrell, Marc, Peiró, Francesca, Tarancón, Albert
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cited_by cdi_FETCH-LOGICAL-a280t-cb82318f44ce980720522a40fd86b234023a1c61a1670a2f3bf253ad5750e7163
cites cdi_FETCH-LOGICAL-a280t-cb82318f44ce980720522a40fd86b234023a1c61a1670a2f3bf253ad5750e7163
container_end_page 16463
container_issue 30
container_start_page 16451
container_title Journal of physical chemistry. C
container_volume 125
creator Baiutti, Federico
Blanco-Portals, Javier
Anelli, Simone
Torruella, Pau
López-Haro, Miguel
Calvino, José
Estradé, Sonia
Torrell, Marc
Peiró, Francesca
Tarancón, Albert
description Hard-template nanocasted mesoporous cerium oxide possesses a unique combination of thermal stability, high surface area, and short diffusion lengths for mass and gas transport, which makes it relevant for high-temperature catalysis, sensing, and electrochemical applications. Here, we present an in-depth study of a number of mesoporous doped ceria systems, and we assess their fundamental structure and functionalities by complementary transmission electron microscopy imaging and spectroscopy, electron tomography reconstructions, and electrochemical impedance spectroscopy. We employed surface chemical modifications for increasing the ionic conductivity of as-synthesized mesoporous Gd-doped ceria by 2 orders of magnitude, enabling the ionic pathway across mesoporous particles. Complementary bulk doping strategies (by the addition of Pr) result in the easy tuning of the electrical transport mechanisms converting pure ionic mesoporous ceria into a mixed ionic–electronic conductor. The results obtained here are rationalized in light of local charge accumulation and mobility effects, providing a potential tool for engineering transport properties in nanocasted ceria and similar nanostructured materials for use in energy applications in the form of functional composites, infiltrated structures, or catalytic layers.
doi_str_mv 10.1021/acs.jpcc.1c04861
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subjects C: Energy Conversion and Storage
title Tailoring the Transport Properties of Mesoporous Doped Cerium Oxide for Energy Applications
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