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Accelerated discovery of potential ferroelectric perovskiteviaactive learning

Authors
Min, KyoungminCho, Eunseog
Issue Date
Jun-2020
Publisher
ROYAL SOC CHEMISTRY
Citation
JOURNAL OF MATERIALS CHEMISTRY C, v.8, no.23, pp.7866 - 7872
Journal Title
JOURNAL OF MATERIALS CHEMISTRY C
Volume
8
Number
23
Start Page
7866
End Page
7872
URI
http://scholarworks.bwise.kr/ssu/handle/2018.sw.ssu/38697
DOI
10.1039/d0tc00985g
ISSN
2050-7526
Abstract
Ferroelectric materials inherently exhibit great memory effect through piezo- and pyroelectricity, which enables their utilization in many state-of-the-art applications. Here, we demonstrate a novel material screening platform for identifying,viamachine learning and active learning, new inorganic ABO(3)-type perovskite materials that potentially possess ferroelectric properties. First, the machine learning model for predicting the band gap and formation energy is constructed based on the initial database. Then, an active learning process is implemented to demonstrate its practical applicability to an initial database of less than 10% of the entire chemical space of materials. The proposed platform demonstrates its reliability by identifying already known ferroelectric materials that satisfy the band gap and formation energy criteria. Furthermore, with an exploration of only approximately 30% of the total database, more than 90% of the materials found after the active learning process are satisfactory. This study validates that utilization of machine learning, with optimization, can greatly accelerate the discovery of novel materials.
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