Institute of Physics, Chinese Academy of Sciences, 100190, Beijing, China.
University of Chinese Academy of Sciences, 100049, Beijing, China.
Nat Commun. 2018 Oct 24;9(1):4414. doi: 10.1038/s41467-018-06919-2.
Plastic deformation of metallic glasses (MGs) has long been considered to be confined to nanoscale shear bands, but recently an affected zone around the shear band was found. Yet, due to technical limitations, the shear-band affected zone (SBAZ), which is critical for understanding shear banding and design of ductile MGs, has yet to be precisely identified. Here, by using magnetic domains as a probe with sufficiently high sensitivity and spatial resolution, we unveil the structure of SBAZs in detail. We demonstrate that shear banding is accompanied by a micrometer-scale SBAZ with a gradient in the strain field, and multiple shear bands interact through the superimposition of SBAZs. There also exists an ultra-long-range gradual elastic stress field extending hundreds of micrometers away from the shear band. Our findings provide a comprehensive picture on shear banding and are important for elucidating the micro-mechanisms of plastic deformation in glasses.
金属玻璃(MGs)的塑性变形长期以来一直被认为局限于纳米级剪切带,但最近发现了剪切带周围的一个影响区。然而,由于技术限制,对于理解剪切带行为和设计韧性 MGs 至关重要的剪切带影响区(SBAZ)尚未被准确识别。在这里,我们使用具有足够高灵敏度和空间分辨率的磁畴作为探针,详细揭示了 SBAZ 的结构。我们证明,剪切带伴随着一个具有应变场梯度的微米级 SBAZ,并且多个剪切带通过 SBAZ 的叠加相互作用。还存在一个超远距离的渐变弹性应力场,从剪切带延伸数百微米。我们的发现提供了一个关于剪切带的全面描述,对于阐明玻璃的塑性变形微观机制非常重要。