Wu Ge, Liu Chang, Yan Yong-Qiang, Liu Sida, Ma Xinyu, Yue Shengying, Shan Zhi-Wei
Center for Advancing Materials Performance from the Nanoscale (CAMP-Nano) and Hysitron Applied Research Center in China (HARCC), State Key Laboratory for Mechanical Behavior of Materials, Xi'an Jiaotong University, 710049, Xi'an, China.
Center for Alloy Innovation and Design (CAID), State Key Laboratory for Mechanical Behavior of Materials, Xi'an Jiaotong University, 710049, Xi'an, China.
Nat Commun. 2024 Feb 9;15(1):1223. doi: 10.1038/s41467-024-45513-7.
The transformation induced plasticity phenomenon occurs when one phase transforms to another one during plastic deformation, which is usually diffusionless. Here we present elemental partitioning-mediated crystalline-to-amorphous phase transformation during quasi-static plastic deformation, in an alloy in form of a Cr-Ni-Co (crystalline)/Zr-Ti-Nb-Hf-Ni-Co (amorphous) nanolaminated composite, where the constitute elements of the two phases have large negative mixing enthalpy. Upon plastic deformation, atomic intermixing occurs between adjacent amorphous and crystalline phases due to extensive rearrangement of atoms at the interfaces. The large negative mixing enthalpy among the constituent elements promotes amorphous phase transformation of the original crystalline phase, which shows different composition and short-range-order structure compared with the other amorphous phase. The reduced size of the crystalline phase shortens mean-free-path of dislocations, facilitating strain hardening. The enthalpy-guided alloy design based on crystalline-to-amorphous phase transformation opens up an avenue for the development of crystal-glass composite alloys with ultrahigh strength and large plasticity.
当一个相在塑性变形过程中转变为另一个相时,会出现相变诱发塑性现象,这种转变通常是无扩散的。在此,我们展示了在准静态塑性变形过程中,由元素分配介导的晶体到非晶相的转变,该转变发生在一种Cr-Ni-Co(晶体)/Zr-Ti-Nb-Hf-Ni-Co(非晶)纳米层状复合材料合金中,其中两相的组成元素具有很大的负混合焓。在塑性变形时,由于界面处原子的广泛重排,相邻非晶相和晶相之间会发生原子互混。组成元素之间很大的负混合焓促进了原始晶相的非晶相转变,与另一个非晶相相比,该非晶相具有不同的成分和短程有序结构。晶相尺寸的减小缩短了位错的平均自由程,促进了应变硬化。基于晶体到非晶相转变的焓引导合金设计为开发具有超高强度和大塑性的晶体-玻璃复合合金开辟了一条途径。