Guo Bojing, Cui Dingcong, Wu Qingfeng, Ma Yuemin, Wei Daixiu, L S R Kumara, Zhang Yashan, Xu Chenbo, Wang Zhijun, Li Junjie, Lin Xin, Wang Jincheng, Wang Xun-Li, He Feng
State Key Laboratory of Solidification Processing, Northwestern Polytechnical University, Xi'an, China.
Department of Physics, City University of Hong Kong, Hong Kong, China.
Nat Commun. 2025 Feb 8;16(1):1475. doi: 10.1038/s41467-025-56710-3.
Dislocations are the intrinsic origin of crystal plasticity. However, initial high-density dislocations in work-hardened materials are commonly asserted to be detrimental to ductility according to textbook strengthening theory. Inspired by the self-organized critical states of non-equilibrium complex systems in nature, we explored the mechanical response of an additively manufactured medium entropy alloy with segregation-dislocation self-organized structures (SD-SOS). We show here that when initial dislocations are in the form of SD-SOS, the textbook theory that dislocation hardening inevitably sacrifices ductility can be overturned. Our results reveal that the SD-SOS, in addition to providing dislocation sources by emitting dislocations and stacking faults, also dynamically interacts with gliding dislocations to generate sustainable Lomer-Cottrell locks and jogs for dislocation storage. The effective dislocation multiplication and storage capabilities lead to the continuous refinement of planar slip bands, resulting in high ductility in the work-hardened alloy produced by additive manufacturing. These findings set a precedent for optimizing the mechanical behavior of alloys via tuning dislocation configurations.
位错是晶体塑性的内在起源。然而,根据教科书上的强化理论,加工硬化材料中初始的高密度位错通常被认为对延展性不利。受自然界中非平衡复杂系统的自组织临界状态启发,我们研究了一种具有偏析 - 位错自组织结构(SD - SOS)的增材制造中熵合金的力学响应。我们在此表明,当初始位错呈SD - SOS形式时,位错强化不可避免地牺牲延展性的教科书理论可能会被推翻。我们的结果表明,SD - SOS除了通过发射位错和层错提供位错源外,还与滑移位错动态相互作用,以产生可持续的洛默 - 科特雷尔位错锁和割阶用于位错存储。有效的位错增殖和存储能力导致平面滑移带不断细化,从而使增材制造的加工硬化合金具有高延展性。这些发现为通过调整位错构型优化合金的力学行为开创了先例。