Suppr超能文献

铈掺杂的MgFeO纳米复合材料:高灵敏度且快速响应-恢复的丙酮气体传感器。

Cerium doped MgFeO nanocomposites: highly sensitive and fast response-recoverable acetone gas sensor.

作者信息

Patil J Y, Nadargi D Y, Mulla I S, Suryavanshi S S

机构信息

School of Physical Sciences, Solapur University, Solapur 413255, India.

Former CSIR Emeritus Scientist, India.

出版信息

Heliyon. 2019 Jun 14;5(6):e01489. doi: 10.1016/j.heliyon.2019.e01489. eCollection 2019 Jun.

Abstract

We report a facile synthesis of Cerium doped MgFeO nanocomposite ferrite and its usability as gas-sensor via simple and robust synthesis approach of glycine-combustion-process. The route utilizes metal nitrates (Ce, Mg, Fe -nitrates) and glycine, in aqueous solution. The involved sol-gel concept was explained on the basis of zwitterion characteristic of glycine. The analysis of the developed ferrite was done in two different ways - i) effect of Ce-doping concentration, and ii) effect of sintering temperature. With the ferrite system MgFeCeO, the doping concentration of Ce was varied from 0.04 to 0.12 with the step x = 0.04, and sintering was done at two different temperatures i.e. 973K and 1173K. As-produced composite system was examined for their gas response towards reducing gases such as LPG, ethanol, acetone and ammonia. The material displayed excellent gas sensing properties towards acetone for wide operating temperature range of 575-675 K. The XRD analysis revealed nanocrystallinity with crystallite size in the range of 28-34 nm. Microstructural analysis confirmed the porous morphology due to auto-ignition during the combustion reaction. The present investigations confirm the produced MgFeCeO is a promising candidate for fabricating high performance acetone sensor.

摘要

我们报道了一种通过甘氨酸燃烧过程的简单而稳健的合成方法,简便合成铈掺杂的MgFeO纳米复合铁氧体及其作为气体传感器的可用性。该方法在水溶液中利用金属硝酸盐(铈、镁、铁的硝酸盐)和甘氨酸。基于甘氨酸的两性离子特性解释了所涉及的溶胶-凝胶概念。对所制备的铁氧体进行了两种不同方式的分析——i)铈掺杂浓度的影响,以及ii)烧结温度的影响。对于铁氧体体系MgFeCeO,铈的掺杂浓度以x = 0.04的步长从0.04变化到0.12,并在973K和1173K这两个不同温度下进行烧结。检测了所制备的复合体系对LPG、乙醇、丙酮和氨等还原性气体的气敏响应。该材料在575 - 675K的宽工作温度范围内对丙酮表现出优异的气敏性能。XRD分析表明其具有纳米结晶性,微晶尺寸在28 - 34nm范围内。微观结构分析证实了由于燃烧反应过程中的自燃而形成的多孔形态。目前的研究证实所制备的MgFeCeO是制造高性能丙酮传感器的有前途的候选材料。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6ab9/6579907/25393f830d9c/gr1.jpg

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验