论文标题
通过化学蒸气运输在Si(001)上生长的ZnO纳米线的合并,晶体学方向和发光
Coalescence, crystallographic orientation and luminescence of ZnO nanowires grown on Si(001) by chemical vapour transport
论文作者
论文摘要
我们分析了通过化学蒸气在SI上生长的自组装ZnO纳米线的形态,结构和发光特性(001)。通过扫描电子显微镜检查纳米线集合的检查表明,纳米线的不可忽略的部分合并在一起,在生长过程中形成结合聚集体。我们表明,通过对纳米线的横截面形状的统计分析,可以明确量化合并度。通过X射线衍射证据对结构特性进行检查,即纳米线在Wurtzite相中结晶,沿C轴伸长,并在平面中随机取向。通过光致发光和阴极发光光谱研究研究的ZnO纳米线的发光特征在于两个频段,即近带边缘发射和ZnO的特征缺陷相关的绿色发光。扫描电子显微照片和单色cathotos发光强度图的互相关表明:(i)合并接头充当非辐射重组的来源,(ii)ZnO纳米线的发光是在单纳米线级别不合美的。具体而言,近带边缘的发射来自纳米线核,而与缺陷相关的绿色发光源于靠近纳米线侧壁的体积。 ZnO纳米线支持的光学指导模式的二维模拟使我们能够将波引导效应排除为发光不均匀性的根本原因。因此,我们将这一观察结果归因于核心壳结构的形成,在该结构中,壳的特征是相对于核心,绿色发射辐射点缺陷高。
We analyse the morphological, structural and luminescence properties of self-assembled ZnO nanowires grown by chemical vapour transport on Si(001). The examination of nanowire ensembles by scanning electron microscopy reveals that a non-negligible fraction of nanowires merge together forming coalesced aggregates during growth. We show that the coalescence degree can be unambiguously quantified by a statistical analysis of the cross-sectional shape of the nanowires. The examination of the structural properties by X-ray diffraction evidences that the nanowires crystallize in the wurtzite phase, elongate along the c-axis, and are randomly oriented in plane. The luminescence of the ZnO nanowires, investigated by photoluminescence and cathodoluminescence spectroscopies, is characterized by two bands, the nearband-edge emission and the characteristic defect-related green luminescence of ZnO. The cross-correlation of scanning electron micrographs and monochromatic cathodoluminescence intensity maps reveals that: (i) coalescence joints act as a source of non-radiative recombination, and (ii) the luminescence of ZnO nanowires is inhomogeneously distributed at the single nanowire level. Specifically, the near-band-edge emission arises from the nanowire cores, while the defect-related green luminescence originates from the volume close to the nanowire sidewalls. Two-dimensional simulations of the optical guided modes supported by ZnO nanowires allow us to exclude waveguiding effects as the underlying reason for the luminescence inhomogeneities. We thus attribute this observation to the formation of a core-shell structure in which the shell is characterized by a high concentration of green-emitting radiative point defects with respect to the core.