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用于改进乙醇传感应用的银掺杂的沸石咪唑框架(ZIF)衍生的氧化锌

Zeolitic-Imidazole Framework (ZIF)-Derived ZnO Doped with Ag for Improved Ethanol Sensing Applications.

作者信息

Clemente Claudio, Gargiulo Valentina, Cimino Luciana, Pepe Giovanni Piero, Ausanio Giovanni, Massera Ettore, Alfe Michela

机构信息

Institute of Sciences and Technologies for Sustainable Energy and Mobility (CNR-STEMS), 80125 Naples, Italy.

Department of Physics of the University of Naples "Federico II", 80125 Naples, Italy.

出版信息

Molecules. 2025 Jun 16;30(12):2611. doi: 10.3390/molecules30122611.

Abstract

Materials derived from metal-organic frameworks (MOFs) as MOF-derived oxides retain a highly porous and active structure from the MOF precursor, exhibiting excellent sensing properties. In addition, the tunable nature of MOFs allows the structural and chemical properties of the resulting oxides to be specifically tuned to enhance their performance as sensing materials. In this work, zinc-based MOF structures belonging to the family of zeolitic imidazolate frameworks (ZIFs) were synthesized, characterized and then subjected to a high-temperature calcination process to obtain the corresponding oxides. To improve sensing performance, various silver doping strategies (1 wt.%) were explored, specifically through a growth process and an impregnation process. Among these approaches, the oxide obtained via the growth process demonstrates superior performance, exhibiting a response 5.8 times higher than pristine ZnO when exposed to 80 ppm of ethanol at 300 °C in a humidity-controlled chamber. These results highlight the potential of silver doping via growth process as an effective strategy to enhance the sensing performance of MOF-derived ZnO.

摘要

源自金属有机框架(MOF)的材料,即MOF衍生氧化物,保留了来自MOF前驱体的高度多孔且活跃的结构,展现出优异的传感性能。此外,MOF的可调节性质使得所得氧化物的结构和化学性质能够被专门调节,以增强其作为传感材料的性能。在这项工作中,合成并表征了属于沸石咪唑酯框架(ZIF)家族的锌基MOF结构,然后对其进行高温煅烧过程以获得相应的氧化物。为了提高传感性能,探索了各种银掺杂策略(1 wt.%),具体通过生长过程和浸渍过程。在这些方法中,通过生长过程获得的氧化物表现出卓越的性能,在湿度控制室内于300°C暴露于80 ppm乙醇时,其响应比原始ZnO高5.8倍。这些结果突出了通过生长过程进行银掺杂作为增强MOF衍生ZnO传感性能的有效策略的潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b8ac/12195911/125a370807be/molecules-30-02611-g009.jpg

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