ReaxFF Reactive Force Field for Solid Oxide Fuel Cell Systems with Application to Oxygen Ion Transport in Yttria-Stabilized Zirconia
Abstract
We present the ReaxFF reactive force field developed to provide a first-principles-based description of oxygen ion transport through yttria-stabilized zirconia (YSZ) solid oxide fuel cell (SOFC) membranes. All parameters for ReaxFF were optimized to reproduce quantum mechanical (QM) calculations on relevant condensed phase and cluster systems. We validated the use of ReaxFF for fuel cell applications by using it in molecular dynamics (MD) simulations to predict the oxygen ion diffusion coefficient in yttria-stabilized zirconia as a function of temperature. These values are in excellent agreement with experimental results, setting the stage for the use of ReaxFF to model the transport of oxygen ions through the YSZ electrolyte for SOFC. Because ReaxFF descriptions are already available for some catalysts (e.g., Ni and Pt) and under development for other high-temperature catalysts, we can now consider fully first-principles-based simulations of the critical functions in SOFC, enabling the possibility of in silico optimization of these materials. That is, we can now consider using theory and simulation to examine the effect of materials modifications on both the catalysts and transport processes in SOFC.
Additional Information
© 2008 American Chemical Society. Received: August 23, 2007; In Final Form: November 21, 2007. Publication Date (Web): March 19, 2008. This work was supported by the Department of Defense Multidisciplinary University Research Initiative (MURI) program administered by the Office of Naval Research under grant N00014-02-1-0665 (Program manager Michele Anderson). In addition, some support was provided by DOE-FETL (DE-FC26-02NT41631, program manager Lane Wilson). We thank Professors Sossina Haile and David Goodwin for helpful discussions. The facilities of the MSC used in these studies were established with grants from DURIP-ONR, DURIP-ARO, and NSF-MRI. Additional support for the MSC comes from ONR, ARO, DOE, NSF, NIH, Chevron, Nissan, Dow Corning, Intel, Pfizer, Boehringer-Ingelheim, and Allozyne.Attached Files
Supplemental Material - jp076775c-file002.pdf
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Additional details
- Eprint ID
- 77425
- DOI
- 10.1021/jp076775c
- Resolver ID
- CaltechAUTHORS:20170512-135306422
- Office of Naval Research (ONR)
- N00014-02-1-0665
- Department of Energy (DOE)
- DE-FC26-02NT41631
- Army Research Office (ARO)
- NSF
- NIH
- Chevron
- Nissan
- Dow Corning
- Intel
- Pfizer
- Boehringer-Ingelheim
- Allozyne
- Created
-
2017-05-12Created from EPrint's datestamp field
- Updated
-
2021-11-15Created from EPrint's last_modified field