铌铁纳米线复合材料的高稳定小滞后R相双向形状记忆效应

Yuxuan Chen, A. Li, Zhiyuan Ma, Taotao Wang, Yinong Liu, Kaiyuan Yu, Feng Yang, D. Jiang, Kun Zhao, Hong Yang, Y. Ren, L. Cui
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引用次数: 0

摘要

在这项工作中,我们设计了一种nitfe - nb纳米线复合材料,以实现高稳定性和小滞后的R相双向形状记忆效应(TWSME)。原位同步加速器高能x射线衍射证明,由于Nb纳米线固有的内应力,r相TWSME在复合材料中处于退火状态,而没有进行热机械训练。此外,原位透射电镜分析揭示了r相相变过程的一些细节,解释了r相TWSME具有高循环稳定性的原因。研究发现,R相的转变经历了几个阶段,包括R相部分晶格畸变的前驱纳米畴的形成,协调取向的R相颗粒的形成,R相颗粒聚并成TWSME优选取向的片状变异体,以及R相晶体结构的继续演化,为进一步的TWSME提供零滞后。这种分阶段的r相变过程在宏观行为上将TWSME总应变划分为较小量级的片段,更重要的是在微观尺度上减少了相变界面处的离散晶格畸变失配。这大大减少了在转变过程中产生位错的机会,从而使r相TWSME具有高循环稳定性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
High-Stability and Small-Hysteresis R Phase Two-Way Shape Memory Effect of a Nitife-Nb Nanowire Composite
In this work, we designed a NiTiFe-Nb nanowire composite to realize a high-stability and small-hysteresis R phase two-way shape memory effect (TWSME). The R-phase TWSME was achieved in the composite in an annealed state without thermomechanical training due to the inherent internal stresses associated with the Nb nanowires, as demonstrated by in situ synchrotron high-energy X-ray diffraction. Besides, in situ transmission electron microscopy analyses revealed some details of the R-phase transformation process, which render an explanation of the high cyclic stability of the R-phase TWSME. The R-phase transformation was found to proceed over several stages, including the formation of precursor nanodomains of partial lattice distortion for the R phase, the formation of R phase particles of coordinated orientations, the coalescence of the R phase particles into selected plate variants of preferential orientations for TWSME, and the continued evolution of the R phase crystallographic structure for further TWSME with zero hysteresis. Such stage-wise process of the R-phase transformation divides the total TWSME strain into segments of smaller magnitudes in the macroscopic behavior, and more importantly reduces the discrete lattice distortion mismatch at the transformation interface on the microscopic scale. This drastically reduces the chances of generating dislocations during the transformation process, thus rendering the high cyclic stability of the R-phase TWSME.
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