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Strength can be controlled by edge dislocations in refractory high-entropy alloys.


ABSTRACT: Energy efficiency is motivating the search for new high-temperature (high-T) metals. Some new body-centered-cubic (BCC) random multicomponent "high-entropy alloys (HEAs)" based on refractory elements (Cr-Mo-Nb-Ta-V-W-Hf-Ti-Zr) possess exceptional strengths at high temperatures but the physical origins of this outstanding behavior are not known. Here we show, using integrated in-situ neutron-diffraction (ND), high-resolution transmission electron microscopy (HRTEM), and recent theory, that the high strength and strength retention of a NbTaTiV alloy and a high-strength/low-density CrMoNbV alloy are attributable to edge dislocations. This finding is surprising because plastic flows in BCC elemental metals and dilute alloys are generally controlled by screw dislocations. We use the insight and theory to perform a computationally-guided search over 107 BCC HEAs and identify over 106 possible ultra-strong high-T alloy compositions for future exploration.

SUBMITTER: Lee C 

PROVIDER: S-EPMC8446014 | biostudies-literature | 2021 Sep

REPOSITORIES: biostudies-literature

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Strength can be controlled by edge dislocations in refractory high-entropy alloys.

Lee Chanho C   Maresca Francesco F   Feng Rui R   Chou Yi Y   Ungar T T   Widom Michael M   An Ke K   Poplawsky Jonathan D JD   Chou Yi-Chia YC   Liaw Peter K PK   Curtin W A WA  

Nature communications 20210916 1


Energy efficiency is motivating the search for new high-temperature (high-T) metals. Some new body-centered-cubic (BCC) random multicomponent "high-entropy alloys (HEAs)" based on refractory elements (Cr-Mo-Nb-Ta-V-W-Hf-Ti-Zr) possess exceptional strengths at high temperatures but the physical origins of this outstanding behavior are not known. Here we show, using integrated in-situ neutron-diffraction (ND), high-resolution transmission electron microscopy (HRTEM), and recent theory, that the hi  ...[more]

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