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通过简便的水热法实现ZnO纳米片和纳米花的强可见光电致发光发射。

Strong visible photoluminescence emission of ZnO nanosheets and nanoflowers by a facile hydrothermal route.

作者信息

García-Velasco A C, Báez-Rodríguez A, Bizarro M, García-González L, Hernández-Torres J, Zamora-Peredo L

机构信息

Centro de Investigación en Micro y Nanotecnología, Universidad Veracruzana, Adolfo Ruiz Cortines 455, C.P. 94294, Boca del Río, México.

出版信息

Nanotechnology. 2020 May 15;31(20):205601. doi: 10.1088/1361-6528/ab6fde. Epub 2020 Jan 24.

Abstract

Zinc oxide nanostructures such as nanosheets (NS) and nanoflowers (NF) were obtained by a facile hydrothermal synthesis using zinc chloride (ZnCl) as precursor with low molar concentrations and a short synthesis time (2 h) at 200 °C. By means of X-ray diffraction and Raman spectroscopy measurements, the wurtzite-type ZnO structure was confirmed with high crystalline quality. SEM micrographs showed the influence of ZnCl concentration on ZnO morphology; ZnO NF were obtained at low concentrations (0.02 and 0.05 M), while ZnO NS were seen for higher concentrations (0.2-0.6 M) and their thicknesses can be estimated from 15 to 60 nm. In addition, TEM images showed a large number of pores with sizes below 15 nm in both ZnO nanostructures. Raman and photoluminescence displayed the surface defects density for ZnO nanostructures. Raman spectra showed the E(LO) mode localized at ∼581 cm, associated with oxygen vacancies and zinc interstitials, being more intense for ZnO NF, while photoluminescence results showed a strong yellow-orange emission (centered from 587 to 618 nm) relative to UV emission, being more intense for ZnO NF. These properties reveal further potential for high performance luminescent devices based on ZnO NF and NS.

摘要

通过简单的水热合成法,以低摩尔浓度的氯化锌(ZnCl)为前驱体,在200℃下经过较短的合成时间(2小时),获得了氧化锌纳米结构,如纳米片(NS)和纳米花(NF)。通过X射线衍射和拉曼光谱测量,证实了纤锌矿型ZnO结构具有高结晶质量。扫描电子显微镜图像显示了ZnCl浓度对ZnO形貌的影响;在低浓度(0.02和0.05 M)下获得了ZnO NF,而在较高浓度(0.2 - 0.6 M)下观察到了ZnO NS,其厚度可估计为15至60纳米。此外,透射电子显微镜图像显示两种ZnO纳米结构中都有大量尺寸小于15纳米的孔隙。拉曼光谱和光致发光显示了ZnO纳米结构的表面缺陷密度。拉曼光谱显示E(LO)模式位于约581 cm处,与氧空位和锌间隙有关,对于ZnO NF更为强烈,而光致发光结果显示相对于紫外发射有强烈的黄橙色发射(中心波长为587至618纳米),对于ZnO NF更为强烈。这些特性揭示了基于ZnO NF和NS的高性能发光器件的进一步潜力。

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