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在特殊设计的氧化锌孪晶纳米棒中近带边发射的抑制

Suppression of near band edge emission in specially engineered ZnO twin nanorods.

作者信息

Singh Avanendra, Senapati Kartik, Satpati Biswarup, Sahoo Pratap K

机构信息

School of Physical Sciences, National Institute of Science Education and Research (NISER), HBNI, Jatni (Bhubaneswar), Odisha 752050, India.

出版信息

Phys Chem Chem Phys. 2017 May 31;19(21):14012-14019. doi: 10.1039/c7cp01880k.

Abstract

We report the synthesis of a unique zinc oxide nanorod structure in which an amorphous ZnO layer is sandwiched between two identical crystalline segments of ZnO. A simple hydrothermal reaction method was used for this purpose, which allowed us to tune the amorphous and crystalline sections of the nanorods via reaction temperature. A systematic study of the morphology and dimensions of the nanorods grown under various conditions was performed using a combination of scanning and transmission electron microscopy. Transmission electron microscopy (TEM) clearly showed an amorphous separation between the two crystalline segments. UV-vis absorption spectroscopy of the twin nanorods (TNRs) showed a redshift in the optical band gap as a function of the growth duration, indicating slightly stressed growth of the crystalline segments. For a longer growth duration, as the amorphous gap starts to get bridged by crystalline growth, redshift in optical band gap becomes constant. This confirms a true mechanical gap between the two crystalline segments of the nanorods. Temperature dependent photoluminescence (PL) spectra of the TNRs showed a variation in free exciton (FX) emission energy, which fitted very well to a model incorporating lattice dilation in addition to the standard electron-phonon interactions. At low temperatures (below ∼180 K) we observed the appearance of visible emission peaks due to localization of defect levels. A loss in the near band edge emission intensity was observed at low temperatures, commensurate with the appearance of defect emission in the visible range.

摘要

我们报道了一种独特的氧化锌纳米棒结构的合成,其中非晶态的ZnO层夹在两个相同的ZnO晶体片段之间。为此采用了一种简单的水热反应方法,该方法使我们能够通过反应温度来调节纳米棒的非晶态和晶态部分。使用扫描电子显微镜和透射电子显微镜相结合的方法,对在各种条件下生长的纳米棒的形态和尺寸进行了系统研究。透射电子显微镜(TEM)清楚地显示了两个晶体片段之间的非晶态分隔。双纳米棒(TNRs)的紫外-可见吸收光谱表明,光学带隙随着生长时间的增加而发生红移,这表明晶体片段的生长存在轻微应力。对于较长的生长时间,随着非晶态间隙开始被晶体生长所弥合,光学带隙的红移变得恒定。这证实了纳米棒的两个晶体片段之间存在真正的机械间隙。TNRs的温度依赖光致发光(PL)光谱显示自由激子(FX)发射能量发生变化,除了标准的电子-声子相互作用外,该变化与包含晶格膨胀的模型非常吻合。在低温(低于约180 K)下,我们观察到由于缺陷能级的局域化而出现可见发射峰。在低温下观察到近带边发射强度的损失,这与可见光范围内缺陷发射的出现相一致。

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