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Published on: November 27, 2015
Unsupervised Machine Learning Prediction of a Novel 1:3 Intermetallic Phase with the Synthesis of TbIr3 (PuNi3-type)
Siddha Sankalpa Sethi1,2, Arnab Dutta1, Emil I Jaffal3,4
1Department of Chemistry, Indian Institute of Technology Kharagpur, Kharagpur 721302, India.
Abstract:
Crystal structure classification of binary intermetallic structures with 1:3 stoichiometry was done with machine learning algorithms. The data set included 97 features and a total of 2366 reported compounds adopting six different structure types. An unsupervised learning method based on principal component analysis (PCA) followed by clustering using the K-means method was applied to cluster compounds belonging to different structure types. With the recommendation engine, we predicted the expansion of the clusters and then identified the cluster/structure-type overlap. The PuNi3-type was among the clearly segregated structure types according to the unsupervised model, and a novel representative, TbIr3, was selected for experimental validation, adopting this structure. The final supervised machine learning predictions were done with partial least squares discriminant analysis (PLS-DA), support vector machine (SVM), and XGBoost, confidently predicting that the novel TbIr3 belongs to the PuNi3-type with accuracies of 96.6, 99.8, and 99.9% respectively. Successful crystal structure segregation was attributed to a novel set of descriptors comprising both compositional and structural features. Given that the predicted PuNi3-type of the TbIr3 phase could be controversial due to the extensive study of the Tb-Ir phase diagram and the reports of the TbIr3 in two different structure types, we conducted two independent experimental structural validations to confirm the existence of TbIr3 in the PuNi3-type structure. Subsequent theoretical validation explained that Ir-Ir contacts are the primary stability factor of TbIr3 in the PuNi3-type structure compared to other structure types.
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