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首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >Effect of Gd doping concentration and sintering temperature on structural, optical, dielectric and magnetic properties of hydrothermally synthesized ZnO nanostructure
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Effect of Gd doping concentration and sintering temperature on structural, optical, dielectric and magnetic properties of hydrothermally synthesized ZnO nanostructure

机译:GD掺杂浓度和烧结温度对水热合成ZnO纳米结构的结构,光学,介电和磁性的影响

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摘要

Nanoparticles of Gd3+ ions doped ZnO were prepared by hydrothermal method. To obtain the desired nanocrystalline phase and also, to enhance the oxygen vacancy inside the host ZnO nanoparticles, the as prepared sample is sintered at 400 and 600 degrees C for 2 h in vacuum atmosphere. X-ray diffractograms (XRD) analysis reveals the absence of any impure phases in the Gd3+ ions doped ZnO nanostructure. The presence of intrinsic defects/oxygen vacancies were confirmed by the analysis of UV-Visible, PL and Raman spectra of the doped sample. The qualitative and quantitative analysis of intrinsic defects was successfully explained by three-state trapping model using positron annihilation study. Room temperature ferromagnetism was found in the sample of 5% Gd3+ ions doped ZnO, which has been successfully explained by the vacancy assisted bound magnetic polaron model. Frequencies as well as temperature dependent dielectric constant of the samples were investigated. The dielectric constants were recorded at 40 Hz and 100 kHz frequencies and the values are nearly similar to 2.76 X 10(6) and 12782 respectively, in the 5% Gd-3+ ions doped ZnO sample. (C) 2017 Elsevier B. V. All rights reserved.
机译:通过水热法制制备Gd3 +离子的纳米颗粒掺杂ZnO。以获得期望的纳米晶相,并且还,以增强宿主的ZnO纳米颗粒内的氧空位,在所制备的样品在400个600摄氏度下烧结在真空气氛中2小时。 X射线衍射图(XRD)分析显示,在GD3 +离子掺杂ZnO纳米结构中没有任何不纯度的相。通过分析掺杂样品的UV可见光,PL和拉曼光谱来确认固有缺陷/氧空位的存在。使用正电子湮没研究成功解释了内在缺陷的定性和定量分析。在5%GD3 +离子掺杂ZnO的样品中发现了室温铁磁性,其已经成功地通过空位辅助结合的磁极化型模型成功地解释。研究了样品的频率以及温度依赖性介电常数。介电常数以40Hz和100kHz频率记录,分别在5%GD-3 +离子掺杂ZnO样品中分别与2.76×10(6)和12782几乎相似。 (c)2017 Elsevier B. V.保留所有权利。

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