Department of Materials Science and Engineering, Seoul National University, Seoul 08826, Republic of Korea.
Sci Adv. 2023 Jun 2;9(22):eadf7426. doi: 10.1126/sciadv.adf7426.
Al-Zn-Mg alloys are widely used in the transportation industry owing to their high strength-to-weight ratio. In these alloys, the main strengthening mechanism is precipitation hardening that occurs because of the formation of nano-sized precipitates. Herein, an interfacial structure of η precipitates, one of the main precipitates in these alloys, is revealed using aberration-corrected scanning transmission electron microscopy and first-principles calculations. These precipitates exhibit a pseudo-periodic steps and bridges. The results of this study demonstrate that the peculiar interface structure of η/Al relieves the strain energy of η precipitates thus stabilizing them. The atomistic role of this interfacial structure in the nucleation and growth of the precipitates is elucidated. This study paves the way for tailoring the mechanical properties of alloys by controlling their precipitation kinetics.
Al-Zn-Mg 合金由于其高强度与重量比在运输行业得到广泛应用。在这些合金中,主要的强化机制是沉淀强化,这是由于纳米级沉淀物的形成而发生的。本文使用相衬校正扫描透射电子显微镜和第一性原理计算揭示了 η 沉淀物(这些合金中的主要沉淀物之一)的界面结构。这些沉淀物呈现出准周期性的台阶和桥接结构。本研究表明,η/Al 界面的特殊结构缓解了 η 沉淀物的应变能,从而稳定了它们。该界面结构在沉淀形核和生长中的原子作用也得到了阐明。这项研究为通过控制沉淀动力学来调整合金的力学性能铺平了道路。