†Department of Mechanical Engineering and Materials Science, University of Pittsburgh, 3700 O'Hara Street, Pittsburgh, Pennsylvania 15261, United States.
‡School of Engineering, The University of Vermont, Burlington, Vermont 05405, United States.
Nano Lett. 2015 Jun 10;15(6):3865-70. doi: 10.1021/acs.nanolett.5b00694. Epub 2015 May 12.
Pushing the limits of elastic deformation in nanowires subjected to stress is important for the design and performance of nanoscale devices from elastic strain engineering. Particularly, introducing nanoscale twins has proved effective in rising the tensile strength of metals. However, attaining ideal elastic strains in nanotwinned materials remains challenging, because nonuniform twin sizes locally affect the yielding behavior. Here, using in situ high-resolution transmission electron microscopy tensile testing of nanotwinned [111]-oriented gold nanowires, we report direct lattice-strain measurements that demonstrate a strong Hall-Petch type relationship in the elastic strain limit up to 5.3%, or near the ideal theoretical limit, as the twin size is decreased below 3 nm. It is found that the largest twin in nanowires with irregular twin sizes controls the slip nucleation and yielding processes in pure tension, which is in agreement with earlier atomistic simulations. Continuous hardening behavior without loss of strength or softening is observed in nanotwinned single-crystalline gold nanowires, which differs from the behaviors of bulk nanocrystalline and nanotwinned-nanocrystalline metals. These findings are of practical value for the use of nanotwinned metallic and semiconductor nanowires in strain-engineered functional microdevices.
在纳米线中施加应力以推动弹性变形的极限对于从弹性应变工程设计和性能纳米尺度设备是很重要的。特别是,引入纳米孪晶已被证明可以有效地提高金属的拉伸强度。然而,在纳米孪晶材料中实现理想的弹性应变仍然具有挑战性,因为不均匀的孪晶尺寸会局部影响屈服行为。在这里,我们使用原位高分辨率透射电子显微镜拉伸测试纳米孪晶[111]取向的金纳米线,我们报告了直接的晶格应变测量,证明了在弹性应变极限内存在很强的 Hall-Petch 关系,达到 5.3%,或接近理想的理论极限,随着孪晶尺寸减小到 3nm 以下。结果表明,在具有不规则孪晶尺寸的纳米线中,最大的孪晶控制着纯拉伸中的滑移成核和屈服过程,这与早期的原子模拟结果一致。在纳米孪晶单晶金纳米线中观察到连续的硬化行为,没有强度损失或软化,这与体纳米晶和纳米孪晶-纳米晶金属的行为不同。这些发现对于在应变工程功能微器件中使用纳米孪晶金属和半导体纳米线具有实际价值。