In situ atomic-scale observation of continuous and reversible lattice deformation beyond the elastic limit

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作者
Lihua Wang
Pan Liu
Pengfei Guan
Mingjie Yang
Jialin Sun
Yongqiang Cheng
Akihiko Hirata
Ze Zhang
Evan Ma
Mingwei Chen
Xiaodong Han
机构
[1] Institute of Microstructure and Property of Advanced Materials,Department of Materials Science and Engineering
[2] Beijing University of Technology,State Key Laboratory of Low
[3] WPI Advanced Institute for Materials Research,Dimensional Quantum Physics and Department of Physics
[4] Tohoku University,undefined
[5] Johns Hopkins University,undefined
[6] Tsinghua University,undefined
[7] State Key Laboratory of Silicon Materials,undefined
[8] Zhejiang University,undefined
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The elastic strain sustainable in crystal lattices is usually limited by the onset of inelastic yielding mediated by discrete dislocation activity, displacive deformation twinning and stress-induced phase transformations, or fracture associated with flaws. Here we report a continuous and gradual lattice deformation in bending nickel nanowires to a reversible shear strain as high as 34.6%, which is approximately four times that of the theoretical elastic strain limit for unconstrained loading. The functioning deformation mechanism was revealed on the atomic scale by an in situ nanowire bending experiments inside a transmission electron microscope. The complete continuous lattice straining process of crystals has been witnessed in its entirety for the straining path, which starts from the face-centred cubic lattice, transitions through the orthogonal path to reach a body-centred tetragonal structure and finally to a re-oriented face-centred cubic structure.
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