Hong Xinguo, Duffy Thomas S, Ehm Lars, Weidner Donald J
Mineral Physics Institute, Stony Brook University, Stony Brook, NY 11794, USA.
J Phys Condens Matter. 2015 Dec 9;27(48):485303. doi: 10.1088/0953-8984/27/48/485303. Epub 2015 Nov 16.
The compressibility of nanocrystalline gold (n-Au, 20 nm) has been studied by x-ray total scattering using high-energy monochromatic x-rays in the diamond anvil cell under quasi-hydrostatic conditions up to 71 GPa. The bulk modulus, K0, of the n-Au obtained from fitting to a Vinet equation of state is ~196(3) GPa, which is about 17% higher than for the corresponding bulk materials (K0: 167 GPa). At low pressures (<7 GPa), the compression behavior of n-Au shows little difference from that of bulk Au. With increasing pressure, the compressive behavior of n-Au gradually deviates from the equation of state (EOS) of bulk gold. Analysis of the pair distribution function, peak broadening and Rietveld refinement reveals that the microstructure of n-Au is nearly a single-grain/domain at ambient conditions, but undergoes substantial pressure-induced reduction in grain size until 10 GPa. The results indicate that the nature of the internal microstructure in n-Au is associated with the observed EOS difference from bulk Au at high pressure. Full-pattern analysis confirms that significant changes in grain size, stacking faults, grain orientation and texture occur in n-Au at high pressure. We have observed direct experimental evidence of a transition in compressional mechanism for n-Au at ~20 GPa, i.e. from a deformation dominated by nucleation and motion of lattice dislocations (dislocation-mediated) to a prominent grain boundary mediated response to external pressure. The internal microstructure inside the nanoparticle (nanocrystallinity) plays a critical role for the macro-mechanical properties of nano-Au.
利用高能单色X射线,在金刚石对顶砧池中准静水压条件下,对高达71 GPa压力范围内的纳米晶金(n-Au,20 nm)的压缩性进行了X射线全散射研究。通过拟合维内状态方程得到的n-Au的体积模量K0约为196(3) GPa,比相应的块状材料(K0:167 GPa)高约17%。在低压(<7 GPa)下,n-Au的压缩行为与块状金的压缩行为几乎没有差异。随着压力增加,n-Au的压缩行为逐渐偏离块状金的状态方程(EOS)。对配分函数、峰展宽和Rietveld精修的分析表明,在环境条件下n-Au的微观结构几乎是单晶粒/单畴,但在高达10 GPa的压力下,晶粒尺寸会因压力而显著减小。结果表明,n-Au内部微观结构的性质与在高压下观察到的与块状金EOS差异有关。全图谱分析证实,n-Au在高压下晶粒尺寸、堆垛层错、晶粒取向和织构发生了显著变化。我们已经观察到n-Au在约20 GPa时压缩机制转变的直接实验证据,即从以晶格位错的形核和运动为主导的变形(位错介导)转变为对外部压力的显著晶界介导响应。纳米颗粒内部的微观结构(纳米结晶度)对纳米金的宏观力学性能起着关键作用。