Physical Chemistry Chemical Physics 2015-06-21

Structure and segregation of dopant-defect complexes at grain boundaries in nanocrystalline doped ceria.

Pratik P Dholabhai, Jeffery A Aguiar, Longjia Wu, Terry G Holesinger, Toshihiro Aoki, Ricardo H R Castro, Blas P Uberuaga

Index: Phys. Chem. Chem. Phys. 17 , 15375-85, (2015)

Full Text: HTML

Abstract

Grain boundaries (GBs) dictate vital properties of nanocrystalline doped ceria. Thus, to understand and predict its properties, knowledge of the interaction between dopant-defect complexes and GBs is crucial. Here, we report atomistic simulations, corroborated with first principles calculations, elucidating the fundamental dopant-defect interactions at model GBs in gadolinium-doped and manganese-doped ceria. Gadolinium and manganese are aliovalent dopants, accommodated in ceria via a dopant-defect complex. While the behavior of isolated dopants and vacancies is expected to depend on the local atomic structure at GBs, the added structural complexity associated with dopant-defect complexes is found to have key implications on GB segregation. Compared to the grain interior, energies of different dopant-defect arrangements vary significantly at the GBs. As opposed to bulk, the stability of oxygen vacancy is found to be sensitive to the dopant arrangement at GBs. Manganese exhibits a stronger propensity for segregation to GBs than gadolinium, revealing that accommodation of dopant-defect clusters depends on the nature of dopants. Segregation strength is found to depend on the GB character, a result qualitatively supported by our experimental observations based on scanning transmission electron microscopy. The present results indicate that segregation energies, availability of favorable sites, and overall stronger binding of dopant-defect complexes would influence ionic conductivity across GBs in nanocrystalline doped ceria. Our comprehensive investigation emphasizes the critical role of dopant-defect interactions at GBs in governing functional properties in fluorite-structured ionic conductors.


Related Compounds

  • CERIUM(III) N...

Related Articles:

In vitro antifungal activity and in vivo antibiofilm activity of cerium nitrate against Candida species.

2015-04-01

[J. Antimicrob. Chemother. 70 , 1083-93, (2015)]

Enhancing electrochemical performance by control of transport properties in buffer layers--solid oxide fuel/electrolyser cells.

2015-05-07

[Phys. Chem. Chem. Phys. 17(17) , 11527-39, (2015)]

Catalytic hydrodechlorination of trichloroethylene in a novel NaOH/2-propanol/methanol/water system on ceria-supported Pd and Rh catalysts.

2015-08-01

[J. Environ. Manage. 158 , 1-10, (2015)]

Formation mechanism of nanocrystalline ceria in aqueous solutions of cerium(III) nitrate and hexamethylenetetramine Polezhaeva OS, et al

[Inorg. Mater. 44(10 , 51-557, (2008)]

The thermal decomposition of cerium(III) nitrate Strydom CA, Vuuren CPJ

[J. Therm. Anal. 32(1) , 157-160]

More Articles...