On-the-fly closed-loop materials discovery via Bayesian active learning

被引:283
作者
Kusne, A. Gilad [1 ,2 ]
Yu, Heshan [2 ]
Wu, Changming [3 ]
Zhang, Huairuo [4 ,5 ]
Hattrick-Simpers, Jason [1 ]
DeCost, Brian [1 ]
Sarker, Suchismita [6 ]
Oses, Corey [7 ,8 ]
Toher, Cormac [7 ,8 ]
Curtarolo, Stefano [7 ,8 ]
Davydov, Albert V. [4 ]
Agarwal, Ritesh [9 ]
Bendersky, Leonid A. [4 ,5 ]
Li, Mo [3 ]
Mehta, Apurva [6 ]
Takeuchi, Ichiro [2 ,10 ]
机构
[1] NIST, Mat Measurement Sci Div, Gaithersburg, MD 20899 USA
[2] Univ Maryland, Mat Sci & Engn Dept, College Pk, MD 20742 USA
[3] Univ Washington, Elect & Comp Engn Dept, Seattle, WA 98195 USA
[4] NIST, Mat Sci & Engn Div, Gaithersburg, MD 20899 USA
[5] Theiss Res Inc, La Jolla, CA 92037 USA
[6] SLAC Natl Accelerator Lab, Stanford Synchrotron Radiat Lightsource, Menlo Pk, CA 94025 USA
[7] Duke Univ, Mech Engn & Mat Sci Dept, Durham, NC 27708 USA
[8] Duke Univ, Ctr Autonomous Mat Design, Durham, NC 27708 USA
[9] Univ Penn, Mat Sci & Engn Dept, Philadelphia, PA 19104 USA
[10] Univ Maryland, Maryland Quantum Mat Ctr, College Pk, MD 20742 USA
关键词
PHASE-CHANGE MATERIALS; OPTIMIZATION; SEARCH;
D O I
10.1038/s41467-020-19597-w
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Active learning-the field of machine learning (ML) dedicated to optimal experiment design-has played a part in science as far back as the 18th century when Laplace used it to guide his discovery of celestial mechanics. In this work, we focus a closed-loop, active learning-driven autonomous system on another major challenge, the discovery of advanced materials against the exceedingly complex synthesis-processes-structure-property landscape. We demonstrate an autonomous materials discovery methodology for functional inorganic compounds which allow scientists to fail smarter, learn faster, and spend less resources in their studies, while simultaneously improving trust in scientific results and machine learning tools. This robot science enables science-over-the-network, reducing the economic impact of scientists being physically separated from their labs. The real-time closed-loop, autonomous system for materials exploration and optimization (CAMEO) is implemented at the synchrotron beamline to accelerate the interconnected tasks of phase mapping and property optimization, with each cycle taking seconds to minutes. We also demonstrate an embodiment of human-machine interaction, where human-in-the-loop is called to play a contributing role within each cycle. This work has resulted in the discovery of a novel epitaxial nanocomposite phase-change memory material. Machine learning driven research holds big promise towards accelerating materials' discovery. Here the authors demonstrate CAMEO, which integrates active learning Bayesian optimization with practical experiments execution, for the discovery of new phase- change materials using X-ray diffraction experiments.
引用
收藏
页数:11
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