Fabrication of novel ternary g-C3N4/Zn0.5Ni0.5Fe1.8Mn0.2O4/rGO hybrid nanocomposites for humidity sensing†

IF 4.6 3区 材料科学 Q2 CHEMISTRY, MULTIDISCIPLINARY
Moksodur Rahman, Md. Lutfor Rahman, Bristy Biswas, Md. Farid Ahmed, Md. Aftab Ali Shaikh, Shirin Akter Jahan and Nahid Sharmin
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Abstract

This research focuses on the fabrication of novel ternary g-C3N4/Zn0.5Ni0.5Fe1.8Mn0.2O4/rGO hybrid nanocomposites (NCs) for humidity sensing applications. The integration of carbon based two dimensional (2D) materials—reduced graphene oxide (rGO) and graphitic carbon nitride (g-C3N4)—with spinel ferrite nanoparticles (Zn0.5Ni0.5Fe1.8Mn0.2O4) in a ternary configuration aims to exploit their distinct properties synergistically, enhancing humidity sensing capabilities. Zn0.5Ni0.5Fe1.8Mn0.2O4, Zn0.5Ni0.5Fe1.8Mn0.2O4/rGO, and g-C3N4/Zn0.5Ni0.5Fe1.8Mn0.2O4 have been synthesized for comparison. The study involves the synthesis process, structural characterization, and evaluation of humidity sensing performance. X-ray peak profiling reveals that the crystallite sizes of the composites are ∼10–14 nm, whereas the particle size range is 6–25 nm from transmission electron microscopy. The XPS survey of the NCs has shown good interaction with water molecules by adsorption processes, which indicates the suitability of the materials for humidity sensing. The dielectric and magnetic properties of the NCs were studied in detail. The fabricated nanocomposites exhibit promising results, showing sensitivity to varying humidity levels of 11–98% with good response and recovery characteristics. The investigation into the nanoscale interactions between different components seeks to elucidate the mechanisms underlying the enhanced sensing properties, with potential applications in environmental monitoring, healthcare, and consumer electronics.

Abstract Image

本研究的重点是制备新型三元 g-C3N4/Zn0.5Ni0.5Fe1.8Mn0.2O4/rGO 混合纳米复合材料(NCs),用于湿度传感应用。将碳基二维(2D)材料--还原氧化石墨烯(rGO)和石墨氮化碳(g-C3N4)--与尖晶石铁氧体纳米粒子(Zn0.5Ni0.5Fe1.8Mn0.2O4)以三元配置结合在一起,旨在协同利用它们的独特性能,增强湿度传感能力。为了进行比较,我们合成了 Zn0.5Ni0.5Fe1.8Mn0.2O4、Zn0.5Ni0.5Fe1.8Mn0.2O4/rGO 和 g-CN4/Zn0.5Ni0.5Fe1.8Mn0.2O4。研究涉及合成过程、结构表征和湿度传感性能评估。X 射线峰值分析表明,复合材料的晶粒尺寸为 10-14 nm,而透射电子显微镜的粒度范围为 6-25 nm。对 NCs 的 XPS 勘测表明,它们通过吸附过程与水分子产生了良好的相互作用,这表明这些材料适用于湿度传感。对 NCs 的介电性能和磁性能进行了详细研究。制备的纳米复合材料显示出良好的结果,对 11-98% 的不同湿度水平具有灵敏度,并具有良好的响应和恢复特性。对不同成分之间纳米级相互作用的研究旨在阐明增强传感性能的内在机理,其潜在应用领域包括环境监测、医疗保健和消费电子产品。
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来源期刊
Nanoscale Advances
Nanoscale Advances Multiple-
CiteScore
8.00
自引率
2.10%
发文量
461
审稿时长
9 weeks
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