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单 ZnSe:Mn 纳米结构的发光和局域光子限制及形状依赖的激光行为。

Luminescence and local photonic confinement of single ZnSe:Mn nanostructure and the shape dependent lasing behavior.

机构信息

Key Laboratory of Low-dimensional Quantum Structures and Quantum Control of Ministry of Education, College of Physics and Information Science, Hunan Normal University, Changsha 410081, People's Republic of China.

出版信息

Nanotechnology. 2013 Feb 8;24(5):055201. doi: 10.1088/0957-4484/24/5/055201. Epub 2013 Jan 11.

DOI:10.1088/0957-4484/24/5/055201
PMID:23306604
Abstract

One-dimensional Mn-ZnSe nanostructures with high crystallite quality were synthesized by the CVD method. Transmission electron microscopy was used to study the defect state, crystal lattice and growth direction of as-prepared nanostructures. Raman spectra under varied excitation wavelengths confirmed the dopant modes of Mn(II) and the inhomogeneity. The micro-photoluminescence (PL) spectra of individual nanostructures under CW laser excitation with different powers showed the dominant trapped state emission with periodic multi-peaks. The selected peak mapping indicated that there were many integrated Fabry-Perot cavities and whispering gallery mode cavities within the nanowires/nanoneedles and nanobelts, respectively, which can be accounted for by inhomogeneous optical phases in the Mn-ZnSe nanostructure. The phase may be introduced by both Mn doping and structural relaxation. The micro-PL spectra under nanosecond pulse laser excitation produce low threshold lasing lines near the band edge of Mn-ZnSe nanostructures. The lasing occurs due to the dominant interaction between bound excitons at high density, evidenced by its appearance close to the LO phonon replica. The belts show much stronger lasing emission due to larger 2D coherent space than the wires due to the inhomogeneity induced by the doping process. The different optical behavior with changing excitation pulses may find applications in future photonic devices of II-VI nanostructures.

摘要

一维 Mn-ZnSe 纳米结构具有高质量的晶体,通过 CVD 方法合成。透射电子显微镜用于研究制备的纳米结构的缺陷状态、晶格和生长方向。在不同激发波长下的 Raman 光谱证实了 Mn(II)的掺杂模式和非均匀性。在 CW 激光激发下,单个纳米结构的微光致发光 (PL) 光谱显示出具有周期性多峰的主要俘获态发射。选择的峰值映射表明,纳米线/纳米针和纳米带内分别存在许多集成的 Fabry-Perot 腔和 whispering gallery 模腔,这可以用 Mn-ZnSe 纳米结构中的非均匀光学相位来解释。该相位可能是由 Mn 掺杂和结构弛豫引起的。纳秒脉冲激光激发下的微 PL 光谱在 Mn-ZnSe 纳米结构的带边附近产生低阈值激光线。由于高浓度束缚激子之间的主导相互作用,激光发生,这可以从其接近 LO 声子复制的出现来证明。由于掺杂过程引起的非均匀性,带显示出比线更强的激光发射,因为其具有更大的 2D 相干空间。随着激发脉冲的变化而产生的不同光学行为可能会在未来的 II-VI 纳米结构光子器件中得到应用。

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