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Protecting Ceria Nanocatalysts-The Role of Sacrificial Barriers

delete2018-08-30
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L
Lucy M. Morgan
M
Marco Molinari
A
Anna Corrias
D
Dean C. Sayle *
DOI:10.1021/acsami.8b08674delete
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Abstract

Abstract

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Forces acting on a functional nanomaterial during operation can cause plastic deformation and extinguish desirable catalytic activities. Here, we show that sacrificial materials, introduced into the catalytic composite device, can absorb some of the imposed stress and protect the structural integrity and hence the activity of the functional component. Specifically, we use molecular dynamics to simulate uniaxial stress on a ceria (CeO2) nanocube, an important functional material with respect to oxidative catalysis, such as the conversion of CO to CO2. We predict that the nanocube, protected by a soft BaO or hard MgO sacrificial barrier, is able to withstand 40.1 or 26.5 GPa, respectively, before plastic deformation destroys the structure irreversibly; the sacrificial materials, BaO and MgO, capture 71 and 54% of the stress, respectively. In comparison, the unprotected nanoceria catalyst deforms plastically at only 2.5 GPa. Furthermore, modeling reveals the deformation mechanisms and the importance of microstructural features, insights that are difficult to measure experimentally.
Keywords:
molecular dynamics
catalytic reactivity
mechanical properties
ceria nanocubes
stress-strain curves
nanomaterials
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Journal

ACS Applied Materials and Interfaces cover
ACS Applied Materials and Interfaces
IF:
8.2
Papers:
6.1W
Citations:
38.7W

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University of Huddersfield
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University of Kent
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