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XGBoost model for electrocaloric temperature change prediction in ceramics
Engineering and Technologynpj Computational Materials

XGBoost model for electrocaloric temperature change prediction in ceramics

J. Gong, S. Chu, et al.

Discover how Jie Gong, Sharon Chu, Rohan K. Mehta, and Alan J. H. McGaughey have harnessed eXtreme Gradient Boosting to accurately predict the electrocaloric temperature changes in ceramics. Their groundbreaking findings reveal promising lead-free candidates for advanced ferroelectrics, achieving impressive prediction accuracy that illuminates crucial aspects of material science.... show more
Abstract
An eXtreme Gradient Boosting (XGBoost) machine learning model is built to predict the electrocaloric (EC) temperature change of a ceramic based on its composition (encoded by Magpie elemental properties), dielectric constant, Curie temperature, and characterization conditions. A dataset of 97 EC ceramics is assembled from the experimental literature. By sampling data from clusters in the feature space, the model can achieve a coefficient of determination of 0.77 and a root mean square error of 0.38 K for the test data. Feature analysis shows that the model captures known physics for effective EC materials. The Magpie features help the model to distinguish between materials, with the elemental electronegativities and ionic charges identified as key features. The model is applied to 66 ferroelectrics whose EC performance has not been characterized. Lead-free candidates with a predicted EC temperature change above 2 K at room temperature and 100 kV/cm are identified.
Publisher
npj Computational Materials
Published On
Jul 01, 2022
Authors
Jie Gong, Sharon Chu, Rohan K. Mehta, Alan J. H. McGaughey
Tags
eXtreme Gradient Boostingelectrocaloric effectceramicsmachine learningfeature analysislead-free candidatesferroelectrics
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