镍钛形状记忆合金可变形性的起源

Xian Chen, C. Ophus, C. Song, J. Ciston, Sambit Das, Yintao Song, Y. Chumlyakov, A. Minor, V. Gavini, R. James
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引用次数: 2

摘要

近等原子NiTi合金在很大程度上是最成功的形状记忆合金。它在生物医学设备中的应用越来越广泛。然而,尽管具有可重复的超弹性效应和出色的形状记忆,NiTi还远远不能满足大多数可逆相变材料的特征条件。因此,其巨大成功背后的科学原因是一个谜。在这项工作中,我们对转换机制进行了严格的数学推导和精确的DFT计算,以寻找以前未被识别的孪生缺陷,我们称之为对合域,并通过像差校正扫描透射电子显微镜在NiTi的真实空间中观察它们。对合域导致NiTi中相位之间额外的216个兼容接口,我们推测这一特征对其可靠性有重要贡献。它们有望在其他转变中出现,并改变对马氏体转变机制的传统解释。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Origins of the transformability of nickel-titanium shape memory alloys
The near equiatomic NiTi alloy is the most successful shape memory alloy by a large margin. It is widely and increasingly used in biomedical devices. Yet, despite having a repeatable superelastic effect and excellent shape-memory, NiTi is very far from satisfying the conditions that characterize the most reversible phase transforming materials. Thus, the scientific reasons underlying its vast success present an enigma. In this work, we perform rigorous mathematical derivation and accurate DFT calculation of transformation mechanisms to seek previously unrecognized twin-like defects that we term involution domains, and we observe them in real space in NiTi by the aberration-corrected scanning transmission electron microscopy. Involution domains lead to an additional 216 compatible interfaces between phases in NiTi, and we theorize that this feature contributes importantly to its reliability. They are expected to arise in other transformations and to alter the conventional interpretation of the mechanism of the martensitic transformation.
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