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Hydrogen enhances strength and ductility of an equiatomic high-entropy alloy

机译:氢增强了等原子高熵合金的强度和延展性

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摘要

Metals are key materials for modern manufacturing and infrastructures as well as transpot and energy solutions owing to their strength and formability. These properties can severely deteriorate when they contain hydrogen, leading to unpredictable failure, an effect called hydrogen embrittlement. Here we report that hydrogen in an equiatomic CoCrFeMnNi high-entropy alloy (HEA) leads not to catastrophic weakening, but instead increases both, its strength and ductility. While HEAs originally aimed at entropy-driven phase stabilization, hydrogen blending acts opposite as it reduces phase stability. This effect, quantified by the alloy’s stacking fault energy, enables nanotwinning which increases the material’s work-hardening. These results turn a bane into a boon: hydrogen does not generally act as a harmful impurity, but can be utilized for tuning beneficial hardening mechanisms. This opens new pathways for the design of strong, ductile, and hydrogen tolerant materials.
机译:由于金属的强度和可成型性,它们是现代制造和基础设施以及运输和能源解决方案的关键材料。当这些特性包含氢时,这些特性会严重恶化,导致无法预测的失效,这种效应称为氢脆。在这里,我们报告说,等原子CoCrFeMnNi高熵合金(HEA)中的氢不会导致灾难性的削弱,而会同时增加其强度和延展性。虽然HEA最初旨在熵驱动的相稳定,但氢掺混却相反,因为它降低了相稳定性。这种效应通过合金的堆垛层错能来量化,可以实现纳米孪晶,从而增加了材料的加工硬化性。这些结果使祸根变成了硼:氢通常不会充当有害杂质,但可用于调整有益的硬化机制。这为设计坚固,易延展和耐氢的材料开辟了新途径。

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