具有L1 - 2结构的fe3ge单晶微柱压缩变形

Zhenghao Chen, H. Inui
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引用次数: 0

摘要

通过微柱压缩试验,研究了L12结构Fe3Ge单晶在室温下随晶向变化的塑性变形行为。除了(010)滑移外,在Fe3Ge中首次观察到(111)滑移。(111)[10]滑动的临界分解剪应力(CRSS),通过将大小相关的强度变化外推到“体”尺寸来估计,是~240 MPa,这几乎是(010)[101]滑动类似估计的(~40 MPa)的6倍。b=[10 - 1]的超晶格位错的解离方案被确认为在(010)和(111)上的APB(反相边界)型,与之前预测的在(111)上的SISF(超晶格固有堆叠错误)方案相反,因为预期的APB不稳定性。在(010)上滑动时,超晶格位错没有优先排列的方向(表明在室温下摩擦应力较低),而在(111)上滑动时,可以观察到超晶格位错沿着螺旋方向排列。这被证明是由于热激活的交叉滑移形成Kear-Wilsdorf锁,这表明在许多其他L12化合物(如Ni3Al)中观察到屈服应力异常的发生。我们将根据得到的实验结果((111)和(010)上的APB能量和(111)和(010)上滑移的CRSS值)讨论Fe3Ge中可能出现的一些重要变形特征(如没有sisf偶解离和屈服应力异常的发生)。
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Micropillar Compression Deformation of Single Crystals of Fe 3Ge with the L1 2 Structure
The plastic deformation behavior of single crystals of Fe3Ge with the L12 structure has been investigated at room temperature as a function of crystal orientation by micropillar compression tests. In addition to slip on (010), slip on (111) is observed to occur in Fe3Ge for the first time. The CRSS (critical resolved shear stress) for (111)[10‾1] slip, estimated by extrapolating the size-dependent strength variation to the ‘bulk’ size, is ~240 MPa, which is almost 6 times that (~40 MPa) for (010)[101] slip similarly estimated. The dissociation scheme for the superlattice dislocation with b=[10‾1] is confirmed to be of the APB (anti-phase boundary)-type both on (010) and on (111), in contrast to the previous prediction for the SISF (superlattice intrinsic stacking fault) scheme on (111) because of the expected APB instability. While superlattice dislocations do not have any preferential directions to align when gliding on (010) (indicative of low frictional stress at room temperature), the alignment of superlattice dislocations along their screw orientation is observed when gliding on (111). This is proved to be due to thermally-activated cross-slip to form Kear-Wilsdorf locks, indicative of the occurrence of yield stress anomaly that is observed in many other L12 compounds such as Ni3Al. Some important deformation characteristics expected to occur in Fe3Ge (such as the absence of SISF-couple dissociation and the occurrence of yield stress anomaly) will be discussed in the light of the experimental results obtained (APB energies on (111) and (010) and CRSS values for slip on (111) and (010)).
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