College of Electronics and Information, University-Industry Joint Center for Ocean Observation and Broadband Communication, Qingdao University, Qingdao 266071, P. R. China.
School of Integrated Circuits, University of Chinese Academy of Sciences, Beijing 100049, P. R. China.
Nanoscale. 2023 May 11;15(18):8181-8188. doi: 10.1039/d3nr00841j.
Metal-organic framework (MOF)-derived metal oxide semiconductors have recently received extensive attention in gas sensing applications due to their high porosity and three-dimensional architecture. Still, challenges remain for MOF-derived materials, including low-cost and facile synthetic methods, rational nanostructure design, and superior gas-sensing performances. Herein, a series of Fe-MIL-88B-derived trimetallic FeCoNi oxides (FCN-MOS) with a mesoporous structure were synthesized by a one-step hydrothermal reaction followed by calcination. The FCN-MOS system consists of three main phases: α-FeO (n-type), CoFeO, and NiFeO (p-type), and the nanostructure and pore size can be controlled by altering the content of α-FeO, CoFeO, and NiFeO. The sensors based on FCN-MOS exhibit a high response of 71.9, a good selectivity towards 100 ppm ethanol at 250 °C, and long-term stability up to 60 days. Additionally, the FCN-MOS-based sensors show a p-n transition gas sensing behavior with the alteration of the Fe/Co/Ni ratio.
金属-有机骨架(MOF)衍生的金属氧化物半导体由于其高孔隙率和三维结构,在气体传感应用中受到了广泛关注。然而,MOF 衍生材料仍然存在一些挑战,包括低成本和简便的合成方法、合理的纳米结构设计以及优异的气体传感性能。在此,通过一步水热反应和煅烧合成了一系列具有介孔结构的 Fe-MIL-88B 衍生的三金属 FeCoNi 氧化物(FCN-MOS)。FCN-MOS 系统由三种主要相组成:α-FeO(n 型)、CoFeO 和 NiFeO(p 型),通过改变α-FeO、CoFeO 和 NiFeO 的含量可以控制纳米结构和孔径。基于 FCN-MOS 的传感器在 250°C 下对 100ppm 乙醇表现出 71.9 的高响应,对其具有良好的选择性,并且长期稳定性长达 60 天。此外,基于 FCN-MOS 的传感器表现出 p-n 转变的气体传感行为,这是由于 Fe/Co/Ni 比例的变化。