Dahl Magnus, Namazi Luna, Zamani Reza R, Dick Kimberly A
Solid State Physics, Lund University, Box 118, S-221 00, Lund, Sweden.
Centre for Analysis and Synthesis, Lund University, Box 124, S-221 00, Lund, Sweden.
Small. 2018 Mar;14(11):e1703785. doi: 10.1002/smll.201703785. Epub 2018 Jan 29.
The physical properties of material largely depend on their crystal structure. Nanowire growth is an important method for attaining metastable crystal structures in III-V semiconductors, giving access to advantageous electronic and surface properties. Antimonides are an exception, as growing metastable wurtzite structure has proven to be challenging. As a result, the properties of these materials remain unknown. One promising means of accessing wurtzite antimonides is to use a wurtzite template to facilitate their growth. Here, a template technique using branched nanowire growth for realizing wurtzite antimonide material is demonstrated. On wurtzite InAs trunks, InAs Sb branch nanowires at different Sb vapor phase compositions are grown. For comparison, branches on zinc blende nanowire trunks are also grown under identical conditions. Studying the crystal structure and the material composition of the grown branches at different x shows that the Sb incorporation is higher in zinc blende than in wurtzite. Branches grown on wurtzite trunks are usually correlated with stacking defects in the trunk, leading to the emergence of a zinc blende segment of higher Sb content growing parallel to the wurtzite structure within a branch. However, the average amount of Sb incorporated within the branch is determined by the vapor phase composition.
材料的物理性质很大程度上取决于其晶体结构。纳米线生长是在III-V族半导体中获得亚稳晶体结构的重要方法,可实现有利的电子和表面性质。锑化物是个例外,因为生长亚稳纤锌矿结构已被证明具有挑战性。因此,这些材料的性质仍然未知。一种有前景的获得纤锌矿锑化物的方法是使用纤锌矿模板来促进其生长。在此,展示了一种利用分支纳米线生长来实现纤锌矿锑化物材料的模板技术。在纤锌矿InAs主干上,生长了不同Sb气相组成的InAsSb分支纳米线。为作比较,在相同条件下也在闪锌矿纳米线主干上生长分支。研究不同x值下生长分支的晶体结构和材料组成表明,闪锌矿中的Sb掺入量高于纤锌矿。在纤锌矿主干上生长的分支通常与主干中的堆垛缺陷相关,导致在分支内出现与纤锌矿结构平行生长的更高Sb含量的闪锌矿段。然而,分支内掺入的Sb平均量由气相组成决定。