Bulletin of the American Physical Society
APS March Meeting 2018
Volume 63, Number 1
Monday–Friday, March 5–9, 2018; Los Angeles, California
Session E20: Energy Storage: Mn-based Cathodes
8:00 AM–10:48 AM,
Tuesday, March 6, 2018
LACC
Room: 308B
Sponsoring
Unit:
GERA
Chair: Y. Shirley Meng, University of California San Diego
Abstract ID: BAPS.2018.MAR.E20.8
Abstract: E20.00008 : Computational Predictions of NMC Cathode Materials
9:48 AM–10:00 AM
Presenter:
Gregory Houchins
(Physics, Carnegie Mellon University)
Authors:
Gregory Houchins
(Physics, Carnegie Mellon University)
Venkat Viswanathan
(Carnegie Mellon University)
A unique aspect of this work is the incorporation of uncertainty estimation in both the DFT training data and ultimately the parameters of the reduced order model used. This is done with the use of the Bayesian Error Estimation Functional (BEEF-vdW) which allows for built in error estimation trained to experimental data. The addition of error estimation can inform the choice of what additional data points should be used to maximize the increase in model fit.
To cite this abstract, use the following reference: http://meetings.aps.org/link/BAPS.2018.MAR.E20.8
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