化学喷雾法制备Mg掺杂氧化锌菜花纳米结构及其室温氨气传感研究。

IF 5.6 1区 化学 Q1 CHEMISTRY, ANALYTICAL
Talanta Pub Date : 2025-04-01 Epub Date: 2024-12-18 DOI:10.1016/j.talanta.2024.127403
S A Jadhav, S D Lokhande, G Umadevi, V D Mote
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引用次数: 0

摘要

在这项研究中,我们报道了通过化学喷雾热解技术获得的mg掺杂氧化锌菜花纳米结构的合成、光学表征和超灵敏氨气感测性能。采用场发射扫描电镜(FESEM)和x射线衍射仪(XRD)对制备的薄膜进行了形貌和结构表征。采用Keithley静电计和Uv-Vis进行了气敏和光学表征。分光光度计。得到了直径为33.16 nm的5% mg掺杂ZnO薄膜的花椰菜状纳米结构。1% Mg掺杂ZnO样品的轴状形貌明显改变为花椰菜状形貌,表明较高的Mg掺杂浓度对形貌有影响。随着Mg掺杂量的增加,颗粒尺寸从38 nm减小到33 nm,表面体积比增大。这强调了形貌和表面积在材料表面现象中起着重要作用。XRD结果表明,制备的薄膜具有ZnO的六方(纤锌矿)晶体结构。基于室温下氨蒸汽暴露时的电阻变化,测试了mg掺杂ZnO纳米结构的气敏性能。5% mg掺杂ZnO纳米结构感知5ppm氨气的能力增强,响应时间最短(24 s),恢复时间最短(27 s),这可能是由于mg掺杂调整了ZnO所需的表面形貌。此外,还证实了镁掺杂ZnO纳米结构的氨气传感机理。随着Mg掺杂量的增加,缺陷的形成增加,光能带隙减小。基于气敏和光学性能,mg掺杂ZnO材料是氨气体传感器和光电器件应用的有前途的候选者。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Synthesis of Mg doped ZnO cauli-flower nanostructures using chemical spray and its investigation for ammonia gas sensing at room temperature.

In this study, we report the synthesis, optical characterization and ultra-sensitive ammonia gas sensing properties of Mg-doped ZnO cauliflower like nanostructures obtained via chemical spray pyrolysis technique. The morphological and structural properties of the prepared films were investigated by Field Emission Scanning electron microscope (FESEM) and X-ray diffraction (XRD). Gas sensing and optical characterizations were carried out using Keithley electrometer and Uv-Vis. Spectrophotometer. Cauliflower-like nanostructures were obtained with diameter 33.16 nm of 5 % Mg-doped ZnO films. Significant changes in the pivot-like morphology of 1 % Mg-doped ZnO sample to cauliflower like morphology indicates that higher Mg doping concentration affects the morphology. Surface to volume ratio increased as the particle size reduced from 38 nm to 33 nm with increasing Mg doping. This emphasizes that the morphology and the surface area play an important role in the surface phenomenon of materials. The XRD results reveal that obtained films have hexagonal (wurtzite) crystal structure of ZnO. The gas sensing properties of Mg-doped ZnO nanostructures were tested based on resistance variation upon the exposure of ammonia vapor at room temperature. The ability 5 % Mg-doped ZnO nanostructures to sense 5 ppm ammonia gas was enhanced with least response (24 s) and recovery time (27 s). It may be due to Mg-doping tuned the required surface morphology of ZnO. Moreover, the ammonia gas sensing mechanism of Mg-doped ZnO nanostructures is demonstrated. Optical energy bandgap is decreased due to the increased defects formation with higher Mg doping. Based on the gas sensing and optical properties, Mg-doped ZnO materials are the promising candidate for ammonia gas sensor and opto-electronic device applications.

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来源期刊
Talanta
Talanta 化学-分析化学
CiteScore
12.30
自引率
4.90%
发文量
861
审稿时长
29 days
期刊介绍: Talanta provides a forum for the publication of original research papers, short communications, and critical reviews in all branches of pure and applied analytical chemistry. Papers are evaluated based on established guidelines, including the fundamental nature of the study, scientific novelty, substantial improvement or advantage over existing technology or methods, and demonstrated analytical applicability. Original research papers on fundamental studies, and on novel sensor and instrumentation developments, are encouraged. Novel or improved applications in areas such as clinical and biological chemistry, environmental analysis, geochemistry, materials science and engineering, and analytical platforms for omics development are welcome. Analytical performance of methods should be determined, including interference and matrix effects, and methods should be validated by comparison with a standard method, or analysis of a certified reference material. Simple spiking recoveries may not be sufficient. The developed method should especially comprise information on selectivity, sensitivity, detection limits, accuracy, and reliability. However, applying official validation or robustness studies to a routine method or technique does not necessarily constitute novelty. Proper statistical treatment of the data should be provided. Relevant literature should be cited, including related publications by the authors, and authors should discuss how their proposed methodology compares with previously reported methods.
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