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源自沸石咪唑酯骨架的分级多孔氧化锌用于高灵敏度MEMS NO传感器。

Hierarchically porous ZnO derived from zeolitic imidazolate frameworks for high-sensitive MEMS NO sensor.

作者信息

Zhang Dan, Luo Na, Xue Zhenggang, Bai Yueling, Xu Jiaqiang

机构信息

NEST Lab, Department of Physics, College of Science, Shanghai University, Shanghai, 200444, China; Hainan Engineering Research Center of Tropical Ocean Advanced Optoelectronic Functional Materials, Key Laboratory of Laser Technology and Optoelectronic Functional Materials of Hainan Province, College of Chemistry and Chemical Engineering, Hainan Normal University, 571158, Haikou, China.

NEST Lab, Department of Physics, College of Science, Shanghai University, Shanghai, 200444, China.

出版信息

Talanta. 2024 Jul 1;274:125995. doi: 10.1016/j.talanta.2024.125995. Epub 2024 Mar 25.

Abstract

Three-dimensional (3D) porous metal oxide nanomaterials with controllable morphology and well-defined pore size have attracted extensive attention in the field of gas sensing. Herein, hierarchically porous ZnO-450 was obtained simply by annealing Zeolitic Imidazolate Frameworks (ZIF-90) microcrystals at an optimal temperature of 450 °C, and the effect of annealing temperature on the formation of porous nanostructure was discussed. Then the as-obtained ZnO-450 was employed as sensing materials to construct a Micro-Electro-Mechanical System (MEMS) gas sensor for detecting NO. The MEMS sensor based on ZnO-450 displays the excellent gas-sensing performances at a lower working temperature (190 °C), such as high response value (242.18% @ 10 ppm), fast response/recovery time (9/26 s) and ultralow limit of detection (35 ppb). The ZnO-450 sensor shows better sensing performance for NO detection than ZnO-based composites materials or commercial ZnO nanoparticles (NPs), which are attributed to its unique hierarchically structures with high porosity and larger surface area. This ZIFs driven strategy can be expected to pave a new pathway for the design of high-performance NO sensors.

摘要

具有可控形态和明确孔径的三维(3D)多孔金属氧化物纳米材料在气体传感领域引起了广泛关注。在此,通过在450℃的最佳温度下对沸石咪唑酯骨架(ZIF-90)微晶进行退火,简单地获得了分级多孔的ZnO-450,并讨论了退火温度对多孔纳米结构形成的影响。然后,将所得的ZnO-450用作传感材料,构建用于检测NO的微机电系统(MEMS)气体传感器。基于ZnO-450的MEMS传感器在较低的工作温度(190℃)下表现出优异的气敏性能,如高响应值(10ppm时为242.18%)、快速的响应/恢复时间(9/26秒)和超低检测限(35ppb)。ZnO-450传感器对NO检测的传感性能优于基于ZnO的复合材料或商业ZnO纳米颗粒(NPs),这归因于其具有高孔隙率和更大表面积的独特分级结构。这种ZIFs驱动策略有望为高性能NO传感器的设计开辟一条新途径。

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