School of Materials Science and Engineering, Center for Optical Materials Science and Engineering Technology, Clemson University, Clemson, SC 20634, USA.
Science. 2011 Sep 23;333(6050):1730-3. doi: 10.1126/science.1208774.
Intrinsically ductile metals are prone to catastrophic failure when exposed to certain liquid metals, but the atomic-level mechanism for this effect is not fully understood. We characterized a model system, a nickel sample infused with bismuth atoms, by using aberration-corrected scanning transmission electron microscopy and observed a bilayer interfacial phase that is the underlying cause of embrittlement. This finding provides a new perspective for understanding the atomic-scale embrittlement mechanism and for developing strategies to control the practically important liquid metal embrittlement and the more general grain boundary embrittlement phenomena in alloys. This study further demonstrates that adsorption can induce a coupled grain boundary structural and chemical phase transition that causes drastic changes in properties.
本征延性金属在接触某些液态金属时容易发生灾难性失效,但这种效应的原子级机制尚未完全理解。我们通过使用相衬校正扫描透射电子显微镜对一个模型系统(注入铋原子的镍样品)进行了表征,并观察到了导致脆化的双层界面相。这一发现为理解原子尺度脆化机制以及开发控制实际重要的液态金属脆化和更普遍的合金晶界脆化现象的策略提供了新的视角。这项研究进一步证明,吸附可以诱导晶界结构和化学相的耦合转变,从而导致性质的剧烈变化。