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Self-organized growth of alloy superlattices

机译:合金超晶格的自组织生长

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Patterning in nature typically occurs through self-organization, and interest has developed recently in the use of such spontaneous processes to fabricate periodically structured materials at the nanometre scale. For example, ordered arrays of semiconductor 'quantum dot' particles (superlattices) have been created by deposition from a suspension, or by self-organization of diffusing atoms on surfaces or in sequentially grown stacked layers. The spontaneous formation of layered structures in epitaxial growth has also been reported, and attributed to the process of spinodal decomposition. Yet highly ordered layered super-lattices, developed for applications in optoelectronics (and in future perhaps for thermoelectrics), are created 'by hand' through the sequential deposition of two different materials. Here we show that superlattices can appear spontaneously during crystal growth of an alloy, as a consequence of the distribution of strain at surface step sites. When a strained alloy grows by 'step flow", the surface steps form periodic bunches. We find that the resulting modulated strain field biases the incorporation of the respective alloy components at different steps in the bunch, leading to segregation and superlattice formation. We also present experimental observations (X-ray diffraction and electron microscopy) of a silicon-germanium alloy grown on silicon, which show clear evidence for the formation of such a self-organized structure.
机译:本质上,图案化通常是通过自组织发生的,近来人们对使用这种自发过程制造纳米级周期性结构化材料的兴趣日益浓厚。例如,半导体“量子点”粒子(超晶格)的有序阵列是通过从悬浮液中沉积或通过在表面或顺序生长的堆叠层中自发扩散原子的自组织而创建的。还已经报道了在外延生长中自发形成层状结构,这归因于旋节线分解的过程。然而,通过顺序沉积两种不同的材料,“手工”创建了用于光电子学(以及将来可能用于热电学)的高度有序的分层超晶格。在这里我们显示,由于应变在表面台阶部位的分布,超晶格可以在合金的晶体生长过程中自发出现。当应变合金通过“阶梯流”生长时,表面阶梯形成周期性的束,我们发现所产生的调制应变场使束中不同步的各个合金成分的掺入产生偏差,从而导致偏析和超晶格形成。目前在硅上生长的硅锗合金的实验观察(X射线衍射和电子显微镜),为形成这种自组织结构提供了清晰的证据。

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