Investigation of ZnO doping on LaFeO3/Fe2O3 prepared from yarosite mineral extraction for ethanol gas sensor applications

IF 1.4 Q4 MATERIALS SCIENCE, MULTIDISCIPLINARY AIMS Materials Science Pub Date : 2022-01-01 DOI:10.3934/matersci.2022007
E. Suhendi, A. E. Putri, Muhamad Taufik Ulhakim, A. Setiawan, Syarif Dani Gustaman
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Abstract

In this study, we used a natural resource, yarosite minerals, as a Fe2O3 precursor. Yarosite minerals were used for the synthesis of LaFeO3/Fe2O3 doped with ZnO via a co-precipitation method using ammonium hydroxide, which produced a light brown powder. Then, an ethanol gas sensor was prepared using a screen-printing technique and characterized using gas chamber tools at 100,200, and 300 ppm of ethanol gas to investigate the sensor's performance. Several factors that substantiate electrical properties such as crystal and morphological structures were also studied using X-Ray Diffraction (XRD) and Scanning Electron Microscopy (SEM), respectively. The crystallite size decreased from about 61.4 nm to 28.8 nm after 0.5 mol% ZnO was added. The SEM characterization images informed that the modified LaFeO3 was relatively the same but not uniform. Lastly, the sensor's electrical properties exhibited a high response of about 257% to 309% at an operating temperature that decreased from 205 ℃ to 180 ℃. This finding showed that these natural resources have the potential to be applied in the development of ethanol gas sensors in the future. Hence, yarosite minerals can be considered a good natural resource that can be further explored to produce an ethanol gas sensor with more sensitive response. In addition, this method reduces the cost of material purchase.
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乙醇气体传感器用黄矾矿萃取法制备LaFeO3/Fe2O3的ZnO掺杂研究
在这项研究中,我们使用了一种天然资源,黄铁矿矿物作为Fe2O3的前驱体。以黄矾石矿物为原料,采用氢氧化铵共沉淀法合成了掺杂ZnO的LaFeO3/Fe2O3,得到了浅棕色粉体。然后,采用丝网印刷技术制备了乙醇气体传感器,并在100,200和300ppm的乙醇气体中使用气室工具进行了表征,以研究传感器的性能。利用x射线衍射(XRD)和扫描电子显微镜(SEM)分别研究了晶体和形态结构等决定电学性能的几个因素。添加0.5 mol% ZnO后,晶粒尺寸由61.4 nm减小到28.8 nm。SEM表征图像显示,改性后的LaFeO3相对相同,但并不均匀。最后,当工作温度从205℃降低到180℃时,传感器的电性能表现出257%至309%的高响应。这一发现表明,这些自然资源具有应用于未来乙醇气体传感器开发的潜力。因此,黄黄矾矿物可以被认为是一种良好的自然资源,可以进一步开发生产具有更灵敏响应的乙醇气体传感器。此外,这种方法降低了材料采购成本。
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来源期刊
AIMS Materials Science
AIMS Materials Science MATERIALS SCIENCE, MULTIDISCIPLINARY-
CiteScore
3.60
自引率
0.00%
发文量
33
审稿时长
4 weeks
期刊介绍: AIMS Materials Science welcomes, but not limited to, the papers from the following topics: · Biological materials · Ceramics · Composite materials · Magnetic materials · Medical implant materials · New properties of materials · Nanoscience and nanotechnology · Polymers · Thin films.
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