First-principles thermodynamic modeling of lanthanum chromate perovskites
- Creators
- Dalach, P.
- Ellis, D. E.
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van de Walle, A.
Abstract
Tendencies toward local atomic ordering in (A,A′)(B,B′)O_(3−δ) mixed composition perovskites are modeled to explore their influence on thermodynamic, transport, and electronic properties. In particular, dopants and defects within lanthanum chromate perovskites are studied under various simulated redox environments. (La_(1−x),Sr_x)(Cr_(1−y),Fe_y)O_(3−δ) (LSCF) and (La_(1−x),Sr_x)(Cr_(1−y),Ru_y)O_(3−δ) (LSCR) are modeled using a cluster expansion statistical thermodynamics method built upon a density functional theory database of structural energies. The cluster expansions are utilized in lattice Monte Carlo simulations to compute the ordering of Sr and Fe(Ru) dopant and oxygen vacancies (Vac). Reduction processes are modeled via the introduction of oxygen vacancies, effectively forcing excess electronic charge onto remaining atoms. LSCR shows increasingly extended Ru-Vac associates and short-range Ru-Ru and Ru-Vac interactions upon reduction; LSCF shows long-range Fe-Fe and Fe-Vac interaction ordering, inhibiting mobility. First principles density functional calculations suggest that Ru-Vac associates significantly decrease the activation energy of Ru-Cr swaps in reduced LSCR. These results are discussed in view of experimentally observed extrusion of metallic Ru from LSCR nanoparticles under reducing conditions at elevated temperature.
Additional Information
© 2012 American Physical Society. Received 16 May 2011; revised 15 November 2011; published 17 January 2012. Work supported by the US Department of Energy, Basic Energy Sciences, under Award Number DE-FG02-05ER46255, by the US National Science Foundation under Grant DMR-0953378 and by Teragrid Resources provided by NCSA under Grant No. DMR050013N.Attached Files
Published - Dalach2012p17046Phys_Rev_B.pdf
Supplemental Material - README.TXT
Supplemental Material - lscf_1000K_anionOnly_Supplemental.xlsx
Supplemental Material - lscf_1000K_fixedA_Supplemental.xlsx
Supplemental Material - lscf_1000K_unrestricted_Supplemental.xlsx
Supplemental Material - lscr_1000K_anionOnly_Supplemental.xlsx
Supplemental Material - lscr_1000K_fixedA_Supplemental.xlsx
Supplemental Material - lscr_1000K_unrestricted_Supplemental.xlsx
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Additional details
- Eprint ID
- 29234
- Resolver ID
- CaltechAUTHORS:20120210-100303735
- Department of Energy (DOE) Basic Energy Sciences
- DE-FG02-05ER46255
- NSF
- DMR-0953378
- NCSA Teragrid Resources
- DMR050013N
- Created
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2012-02-10Created from EPrint's datestamp field
- Updated
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2023-01-19Created from EPrint's last_modified field