Wu Yuan, Zhang Fei, Li Fengshou, Yang Yi, Zhu Jiaming, Wu Hong-Hui, Zhang Yao, Qu Ruitao, Zhang Zhefeng, Nie Zhihua, Ren Yang, Wang Yandong, Liu Xiongjun, Wang Hui, Lu Zhaoping
Beijing Advanced Innovation Center for Materials Genome Engineering, State Key Laboratory for Advanced Metals and Materials, University of Science and Technology Beijing, Beijing 100083, China.
School of Civil Engineering, Shandong University, Jinan 250012, China.
Mater Horiz. 2022 Feb 7;9(2):804-814. doi: 10.1039/d1mh01612a.
Superelasticity associated with martensitic transformation has found a broad range of engineering applications, such as in low-temperature devices in the aerospace industry. Nevertheless, the narrow working temperature range and strong temperature sensitivity of the first-order phase transformation significantly hinder the usage of smart metallic components in many critical areas. Here, we scrutinized the phase transformation behavior and mechanical properties of multicomponent B2-structured intermetallic compounds. Strikingly, the (TiZrHfCuNi)Co high-entropy intermetallics (HEIs) show superelasticity with high critical stress over 500 MPa, high fracture strength of over 2700 MPa, and small temperature sensitivity in a wide range of temperatures over 220 K. The complex sublattice occupation in these HEIs facilitates formation of nano-scaled local chemical fluctuation and then elastic confinement, which leads to an ultra-sluggish martensitic transformation. The thermal activation of the martensitic transformation was fully suppressed while the stress activation is severely retarded with an enhanced threshold stress over a wide temperature range. Moreover, the high configurational entropy also results in a small entropy change during phase transformation, consequently giving rise to the low temperature sensitivity of the superelasticity stress. Our findings may provide a new paradigm for the development of advanced superelastic alloys, and shed new insights into understanding of martensitic transformation in general.
与马氏体相变相关的超弹性已在广泛的工程应用中得到应用,例如在航空航天工业的低温设备中。然而,一级相变狭窄的工作温度范围和强烈的温度敏感性严重阻碍了智能金属部件在许多关键领域的使用。在此,我们仔细研究了多组分B2结构金属间化合物的相变行为和力学性能。引人注目的是,(TiZrHfCuNi)Co高熵金属间化合物(HEIs)表现出超弹性,其临界应力超过500 MPa,断裂强度超过2700 MPa,并且在超过220 K的宽温度范围内温度敏感性小。这些HEIs中复杂的亚晶格占位促进了纳米级局部化学涨落的形成,进而产生弹性约束,这导致了超迟缓马氏体相变。马氏体相变的热激活被完全抑制,而应力激活在宽温度范围内因阈值应力增强而严重受阻。此外,高组态熵还导致相变过程中的熵变较小,从而导致超弹性应力的温度敏感性较低。我们的发现可能为先进超弹性合金的开发提供新的范例,并为一般马氏体相变的理解提供新的见解。