Structural and optical properties of In-doped CdS nanostructures: A comprehensive study

IF 5.1 2区 材料科学 Q1 MATERIALS SCIENCE, CERAMICS Ceramics International Pub Date : 2024-07-08 DOI:10.1016/j.ceramint.2024.07.093
Reza Bagheri, Hosein Kafashan
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Abstract

This research offers a comprehensive exploration of the effects of In-doping on the characteristics of CdS nanopowders (NPs). The structural and morphological properties of In-doped CdS nanostructures were investigated, revealing significant changes induced by In-doping. X-ray diffraction (XRD) analysis verified the formation of CdS phase. Determination of crystallite size (D) demonstrated a decrease from 27.0 nm for undoped CdS to 23.0 nm for CdS doped with 12% In-doped. Field-emission scanning electron microscopy (FESEM) imaging showed grain-like structures with sizes of 20 – 35 nm, showing variations in particle size distribution with increasing In-dopant concentration. Photoluminescence (PL) analysis illustrated changes in PL intensity and emission peak wavelengths due to In-doping. PL intensity decreased after In-doping. Additionally, a blue-shift in emission peak wavelengths indicated changes in the bandgap energy of CdS induced by In-doping. UV-Vis spectroscopy assessed the optical properties, revealing shifts in absorption and transmission spectra du to In-doping. In-doping enhanced absorption within the 400 – 500 nm range while decreasing absorption within 600 – 1000 nm. Transmission spectra displayed increased transparency after In-doping, attributed to modifications in band structure and morphology. Reflectance spectra initially increased with In-dopant concentration within 400 – 500 nm, followed by a decrease, suggesting alterations in electronic and structural properties. Estimation of band gap energy (Eg) unveiled an increase in Eg for In-doped CdS nanostructures compared to undoped CdS, likely due to reduced crystallite size and the Burstein-Moss effect induced by In-dopant ions. Raman analysis revealed a shift in peak positions and changes in intensity after In-doping, with a decrease in the 2LO/LO ratio indicating a deterioration in crystalline quality after In-doping. Overall, this comprehensive investigation provides valuable insights into the structural, morphological, optical, and electrical properties of In-doped CdS nanostructures, pivotal for their promising applications in optoelectronic devices and photovoltaics.

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掺铟 CdS 纳米结构的结构和光学特性:综合研究
这项研究全面探讨了掺杂铟对 CdS 纳米粉体(NPs)特性的影响。研究了掺杂 In 的 CdS 纳米结构的结构和形态特性,揭示了掺杂 In 引发的显著变化。X 射线衍射(XRD)分析验证了 CdS 相的形成。晶体尺寸(D)的测定表明,未掺杂的 CdS 尺寸从 27.0 nm 减小到掺杂 12% In 的 CdS 尺寸的 23.0 nm。场发射扫描电子显微镜(FESEM)成像显示出粒度为 20 - 35 nm 的晶粒状结构,表明粒度分布随掺杂 In 浓度的增加而变化。光致发光(PL)分析表明,由于掺杂了 In,PL 强度和发射峰波长发生了变化。掺入 In 后,PL 强度降低。此外,发射峰波长的蓝移表明掺杂 In 引起了 CdS 带隙能的变化。紫外-可见光谱评估了光学特性,显示了掺杂 In 后吸收和透射光谱的变化。掺杂 In 增强了 400 - 500 nm 范围内的吸收,同时降低了 600 - 1000 nm 范围内的吸收。透射光谱显示,掺入 In 后透明度增加,这归因于带状结构和形态的改变。在 400 - 500 nm 范围内,反射光谱最初随着掺杂 In 浓度的增加而增加,随后有所下降,这表明电子和结构特性发生了变化。带隙能(Eg)的估算显示,与未掺杂的 CdS 相比,掺 In 的 CdS 纳米结构的 Eg 有所提高,这可能是由于晶体尺寸减小以及掺 In 离子引起的 Burstein-Moss 效应所致。拉曼分析表明,掺入 In 后,峰位置发生了移动,强度也发生了变化,2LO/LO 比值下降,表明掺入 In 后晶体质量下降。总之,这项全面的研究为掺 In CdS 纳米结构的结构、形态、光学和电学特性提供了宝贵的见解,对它们在光电器件和光伏领域的应用前景至关重要。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Ceramics International
Ceramics International 工程技术-材料科学:硅酸盐
CiteScore
9.40
自引率
15.40%
发文量
4558
审稿时长
25 days
期刊介绍: Ceramics International covers the science of advanced ceramic materials. The journal encourages contributions that demonstrate how an understanding of the basic chemical and physical phenomena may direct materials design and stimulate ideas for new or improved processing techniques, in order to obtain materials with desired structural features and properties. Ceramics International covers oxide and non-oxide ceramics, functional glasses, glass ceramics, amorphous inorganic non-metallic materials (and their combinations with metal and organic materials), in the form of particulates, dense or porous bodies, thin/thick films and laminated, graded and composite structures. Process related topics such as ceramic-ceramic joints or joining ceramics with dissimilar materials, as well as surface finishing and conditioning are also covered. Besides traditional processing techniques, manufacturing routes of interest include innovative procedures benefiting from externally applied stresses, electromagnetic fields and energetic beams, as well as top-down and self-assembly nanotechnology approaches. In addition, the journal welcomes submissions on bio-inspired and bio-enabled materials designs, experimentally validated multi scale modelling and simulation for materials design, and the use of the most advanced chemical and physical characterization techniques of structure, properties and behaviour. Technologically relevant low-dimensional systems are a particular focus of Ceramics International. These include 0, 1 and 2-D nanomaterials (also covering CNTs, graphene and related materials, and diamond-like carbons), their nanocomposites, as well as nano-hybrids and hierarchical multifunctional nanostructures that might integrate molecular, biological and electronic components.
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