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Enrique Ruiz-Trejo

Researcher at Imperial College London

Publications -  61
Citations -  1482

Enrique Ruiz-Trejo is an academic researcher from Imperial College London. The author has contributed to research in topics: Solid oxide fuel cell & Electrode. The author has an hindex of 20, co-authored 61 publications receiving 1264 citations. Previous affiliations of Enrique Ruiz-Trejo include University of St Andrews & Max Planck Society.

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Strategies for carbon and sulfur tolerant solid oxide fuel cell materials, incorporating lessons from heterogeneous catalysis

TL;DR: The theoretical basis behind carbon and sulfur poisoning is studied, before examining the strategies toward carbon and sulphur tolerance used so far in the SOFC literature, and the more extensive relevant heterogeneous catalysis literature is studied for strategies and materials which could be incorporated intocarbon and sulfur tolerant fuel cells.
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Progress in the electrochemical modification of graphene-based materials and their applications

TL;DR: Graphene is a 2D allotrope of carbon with exciting properties such as extremely high electronic conductivity and superior mechanical strength It has considerable potential for applications in fields such as bio-sensors, electrochemical energy storage and electronics.
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Oxygen ion diffusivity, surface exchange and ionic conductivity in single crystal Gadolinia doped Ceria

TL;DR: In this article, the first data on a single crystal of Gadolinia doped Ceria (Ceria) was presented, which was prepared using inductive melting in a cold crucible.
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Enhanced triple-phase boundary density in infiltrated electrodes for solid oxide fuel cells demonstrated by high-resolution tomography

TL;DR: In this article, the authors demonstrate the three-dimensional imaging of nano-particle infiltrated Ni-GDC (gadolinia-doped ceria) electrodes using focused ion beam tomography.
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Oxygen diffusion and proton conduction in La1−xSrxYO3−δ

TL;DR: Proton conduction has been detected in the solid solution La 1− x Sr x YO 3− δ (LSYO) below 550°C using impedance spectroscopy.