Engineering and Applied Sciences, California Institute of Technology, 1200 East California Boulevard, Pasadena, California 91125, USA.
Phys Rev Lett. 2010 Apr 2;104(13):135503. doi: 10.1103/PhysRevLett.104.135503. Epub 2010 Apr 1.
We report results of uniaxial compression experiments on single-crystalline Cu nanopillars with nonzero initial dislocation densities produced without focused ion beam (FIB). Remarkably, we find the same power-law size-driven strengthening as FIB-fabricated face-centered cubic micropillars. TEM analysis reveals that initial dislocation density in our FIB-less pillars and those produced by FIB are on the order of 10(14) m(-2) suggesting that mechanical response of nanoscale crystals is a stronger function of initial microstructure than of size regardless of fabrication method.
我们报告了未经聚焦离子束(FIB)处理的具有非零初始位错密度的单晶 Cu 纳米柱单轴压缩实验结果。值得注意的是,我们发现与 FIB 制造的面心立方微柱相同的幂律尺寸驱动强化。TEM 分析表明,我们的无 FIB 纳米柱和 FIB 制造的纳米柱的初始位错密度均在 10(14) m(-2)量级,这表明纳米晶体的力学响应主要取决于初始微观结构,而不是尺寸,与制造方法无关。