Accelerated search for materials with targeted properties by adaptive design
Ускоренный поиск материалов с заданными свойствами с помощью адаптивного проектирования
2016-04-15
SCID: 54.1/gkzw69ae
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NiTi-based shape memory alloysadaptive designexploitation–exploration trade-offinference and global optimizationthermal hysteresis (ΔT)
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Abstract (AI)
Finding new materials with targeted properties has traditionally been guided by intuition, and trial and error. With increasing chemical complexity, the combinatorial possibilities are too large for an Edisonian approach to be practical. Here we show how an adaptive design strategy, tightly coupled with experiments, can accelerate the discovery process by sequentially identifying the next experiments or calculations, to effectively navigate the complex search space. Our strategy uses inference and global optimization to balance the trade-off between exploitation and exploration of the search space. We demonstrate this by finding very low thermal hysteresis (ΔT) NiTi-based shape memory alloys, with Ti50.0Ni46.7Cu0.8Fe2.3Pd0.2 possessing the smallest ΔT (1.84 K). We synthesize and characterize 36 predicted compositions (9 feedback loops) from a potential space of ∼800,000 compositions. Of these, 14 had smaller ΔT than any of the 22 in the original data set.
Key Findings
1
An adaptive design strategy coupled tightly with experiments can accelerate materials discovery by sequentially selecting next experiments or calculations.
2
Applied to NiTi-based shape memory alloys, the method identified compositions with very low thermal hysteresis (ΔT).
3
From a potential space of ~800,000 compositions, 36 predicted compositions were synthesized and characterized via nine feedback loops.
4
Out of the 36 synthesized, 14 compositions had smaller ΔT than any of the 22 alloys in the original data set.
5
The composition Ti50.0Ni46.7Cu0.8Fe2.3Pd0.2 exhibited the smallest measured ΔT of 1.84 K.
6
The strategy uses inference and global optimization to balance exploitation and exploration in complex search spaces.
Research Object
NiTi-based shape memory alloys (compositional space of candidate alloys including Ti50.0Ni46.7Cu0.8Fe2.3Pd0.2)
Research Subject
Discovery and optimization of alloys with very low thermal hysteresis (ΔT) via an adaptive design strategy coupled to experiments (sequential selection of compositions, synthesis, and characterization)
Publication Details
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2016-04-15
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