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Micro-Raman spectroscopic characterization of ZnO quantum dots, nanocrystals and nanowires

机译:ZnO量子点,纳米晶体和纳米线的微拉曼光谱表征

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Nanostructures, such as quantum dots, nanocrystals and nanowires, made of wurtzite ZnO have recently attracted attention due to their proposed applications in optoelectronic devices. Raman spectroscopy has been widely used to study the optical phonon spectrum modification in ZnO nanostructures as compared to bulk crystals. Understanding the phonon spectrum change in wurtzite nanostructures is important because the optical phonons affect the light emission and absorption. The interpretation of the phonon peaks in the Raman spectrum from ZnO nanostructures continues to be the subject of debates. Here we present a comparative study of micro-Raman spectra from ZnO quantum dots, nanocrystals and nanowires. Several possible mechanisms for the peak position shifts, I.e., optical phonon confinement, phonon localization on defects and laser-induced heating, are discussed in details. We show that the shifts of ~2 cm~(-1) in non-Resonant spectra are likely due to the optical phonon confinement in ZnO quantum dots with the average diameter of 4 nm. The small shifts in the non-Resonant spectra from ZnO nanowires with the diameter ~20 nm - 50 nm can be attributed to either defects or large size dispersion, which results in a substantial contribution from nanowires with smaller diameters. The large red-shifts of ~10 cm~(-1) in the resonant Raman spectrum from nanocrystals were proved to be due to local laser heating.
机译:纳米结构,例如量子点,纳米晶体和纳米线,由紫立岩ZnO制成的,最近引起了由于其在光电器件中提出的应用而受到关注。与散装晶体相比,拉曼光谱已经广泛用于研究ZnO纳米结构中的光学声子谱改性。了解紫零纳米结构中的声谱频谱变化很重要,因为光学声音会影响发光和吸收。来自ZnO纳米结构的拉曼光谱中的声子峰的解释仍然是辩论的主题。在这里,我们介绍了来自ZnO量子点,纳米晶体和纳米线的微拉曼光谱的比较研究。详细讨论了峰位位置的几种可能的机制,即光学声子限制,对缺陷和激光诱导的加热进行声子定位。我们表明,非谐振光谱中的〜2cm〜(-1)的偏移可能是由于ZnO量子点的光学声子限制,平均直径为4nm。从ZnO纳米线的非共振光谱中的小变化可以归因于缺陷或大尺寸的分散体,这导致从具有较小直径的纳米线的显着贡献。证明了来自纳米晶体的谐振拉曼光谱中的〜10cm〜(-1)的大的红色偏移是由于局部激光加热。

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