Influence of substrate temperature and Mn/Y co-doping concentration on the morphological, structural and optical properties of CuO nanostructured film deposited by the spray pyrolysis method

IF 2.8 3区 物理与天体物理 Q2 PHYSICS, CONDENSED MATTER
Balen Hussein , Arife Gencer Imer , Murat Aycibin
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引用次数: 0

Abstract

In this work, the effect of substrate temperature (ST) during deposition and dopant amount of Mn (1,3,5, and 7 %) and Y(3 %), (Mn/Y), on the physical properties of copper oxide (CuO) the nanostructured film were analyzed using different diagnostic tools. The pure and (Mn, Y) co-doped CuO thin films were deposited by the spray pyrolysis method, which is effective and easy to apply for any substrate. Deposited pure and (Mn,Y) co-doped CuO nanostructured films were investigated by X-ray diffraction (XRD), UV–Vis spectroscopy, and Field emission scanning electron microscopy (FESEM) techniques to analyze the influence of ST and co-doping on the structural, morphological, and optical properties of prepared films. The FESEM is used to visualize nanostructures on the surface of the film. Also, it is observed that the surface morphology of CuO film changes from a spherical-like to a nanocloumnar-like structure with increasing substrate temperature. The XRD diffractograms confirm the monoclinic crystal structure of CuO, in polycrystalline nature for all deposited films. UV–Vis spectra suggest changing the optical absorbance and the band gap of the pure and Mn/Y co-doped CuO nanostructured films. In the first investigation of this study, the better substrate temperature was obtained as 400 °C according to results. In the second part, the effect of Y and Mn doping with different content was analyzed for the CuO film deposited at the chosen ST of 400 °C. There is no observable crystalline structure variation in the XRD pattern, but the size of nanostructure and dislocation density are varied with Mn/Y co-doping. FESEM micrographs confirm the impact of the co-doping concentration on the size, shape, and surface properties of CuO nanostructured film. In addition, the optical band gap increases with Mn doping up to 3 % of Mn content and it was determined as 2.69 eV for the sample 3Mn/Y@CuO nanostructured film. The obtained results suggest that the substrate temperature has an important impact on the physical properties of the spray deposited CuO nanostructured film, and the structural, optical, and surface properties of the CuO nanostructured films may be engineered by Mn/Y doping concentration.
基底温度和 Mn/Y 共掺浓度对喷雾热解法沉积的氧化铜纳米结构薄膜的形貌、结构和光学特性的影响
在这项研究中,使用不同的诊断工具分析了沉积过程中的基底温度(ST)以及锰(1、3、5 和 7 %)和钇(3 %)的掺杂量(Mn/Y)对纳米结构氧化铜(CuO)薄膜物理性质的影响。纯氧化铜薄膜和(锰、钇)共掺杂氧化铜薄膜是通过喷雾热解法沉积的,这种方法既有效又易于应用于任何基底。通过 X 射线衍射 (XRD)、紫外可见光谱和场发射扫描电子显微镜 (FESEM) 技术研究了沉积的纯 CuO 和(Mn,Y)共掺杂 CuO 纳米结构薄膜,分析了 ST 和共掺杂对所制备薄膜的结构、形态和光学性能的影响。场发射扫描电子显微镜用于观察薄膜表面的纳米结构。此外,还观察到随着基底温度的升高,CuO 薄膜的表面形貌从球状结构变为纳米鳞片状结构。XRD 衍射图证实了所有沉积薄膜的 CuO 均为单斜晶系晶体结构,具有多晶性质。紫外可见光谱表明,纯 CuO 和 Mn/Y 共掺杂 CuO 纳米结构薄膜的光学吸光度和带隙发生了变化。在本研究的第一部分调查中,根据结果确定了较佳的基底温度为 400 ℃。在第二部分中,分析了不同含量的 Y 和 Mn 掺杂对所选 400 ℃ 温度下沉积的氧化铜薄膜的影响。在 XRD 图谱中没有观察到晶体结构的变化,但纳米结构的尺寸和位错密度随 Mn/Y 共掺杂而变化。FESEM 显微照片证实了共掺杂浓度对氧化铜纳米结构薄膜的尺寸、形状和表面特性的影响。此外,光带隙随着锰掺杂量的增加而增大,锰含量最高可达 3%,3Mn/Y@CuO 纳米结构薄膜样品的光带隙被测定为 2.69 eV。这些结果表明,基底温度对喷雾沉积 CuO 纳米结构薄膜的物理性质有重要影响,而 CuO 纳米结构薄膜的结构、光学和表面性质可通过 Mn/Y 掺杂浓度来设计。
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来源期刊
Physica B-condensed Matter
Physica B-condensed Matter 物理-物理:凝聚态物理
CiteScore
4.90
自引率
7.10%
发文量
703
审稿时长
44 days
期刊介绍: Physica B: Condensed Matter comprises all condensed matter and material physics that involve theoretical, computational and experimental work. Papers should contain further developments and a proper discussion on the physics of experimental or theoretical results in one of the following areas: -Magnetism -Materials physics -Nanostructures and nanomaterials -Optics and optical materials -Quantum materials -Semiconductors -Strongly correlated systems -Superconductivity -Surfaces and interfaces
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