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氧化物/ZIF-8复合纳米纤维纱线:增强表面活性以实现卓越的化学电阻传感

Oxide/ZIF-8 Hybrid Nanofiber Yarns: Heightened Surface Activity for Exceptional Chemiresistive Sensing.

作者信息

Kim Dong-Ha, Chong Sanggyu, Park Chungseong, Ahn Jaewan, Jang Ji-Soo, Kim Jihan, Kim Il-Doo

机构信息

Department of Materials Science and Engineering, Korea Advanced Institute of Science and Technology (KAIST), 291 Daehak-ro, Yuseong-gu, Daejeon, 34141, Republic of Korea.

Department of Chemical and Biomolecular Engineering, Korea Advanced Institute of Science and Technology (KAIST), 291 Daehak-ro, Yuseong-gu, Daejeon, 34141, Korea.

出版信息

Adv Mater. 2022 Mar;34(10):e2105869. doi: 10.1002/adma.202105869. Epub 2022 Jan 31.

Abstract

Though highly promising as powerful gas sensors, oxide semiconductor chemiresistors have low surface reactivity, which limits their selectivity, sensitivity, and reaction kinetics, particularly at room temperature (RT) operation. It is proposed that a hybrid design involving the nanostructuring of oxides and passivation with selective gas filtration layers can potentially overcome the issues with surface activity. Herein, unique bi-stacked heterogeneous layers are introduced; that is, nanostructured oxides covered by conformal nanoporous gas filters, on ultrahigh-density nanofiber (NF) yarns via sputter deposition with indium tin oxide (ITO) and subsequent self-assembly of zeolitic imidazolate framework (ZIF-8) nanocrystals. The NF yarn composed of ZIF-8-coated ITO films can offer heightened surface activity at RT because of high porosity, large surface area, and effective screening of interfering gases. As a case study, the hybrid sensor demonstrated remarkable sensing performances characterized by high NO selectivity, fast response/recovery kinetics (>60-fold improvement), and large responses (12.8-fold improvement @ 1 ppm) in comparison with pristine yarn@ITO, especially under highly humid conditions. Molecular modeling reveals an increased penetration ratio of NO over O to the ITO surface, indicating that NO oxidation is reliably prevented and that the secondary adsorption sites provided by the ZIF-8 facilitate the adsorption/desorption of NO, both to and from ITO.

摘要

尽管氧化物半导体化学电阻作为强大的气体传感器极具前景,但它的表面反应性较低,这限制了其选择性、灵敏度和反应动力学,尤其是在室温(RT)操作下。有人提出,一种涉及氧化物纳米结构化和用选择性气体过滤层进行钝化的混合设计可能会克服表面活性方面的问题。在此,引入了独特的双堆叠异质层;也就是说,通过用氧化铟锡(ITO)进行溅射沉积以及随后沸石咪唑酯骨架(ZIF-8)纳米晶体的自组装,在超高密度纳米纤维(NF)纱线上形成由共形纳米多孔气体过滤器覆盖的纳米结构化氧化物。由ZIF-8涂层ITO薄膜组成的NF纱由于具有高孔隙率、大表面积以及对干扰气体的有效筛选,在室温下能够提供更高的表面活性。作为一个案例研究,与原始纱线@ITO相比,这种混合传感器表现出卓越的传感性能,其特点是对NO具有高选择性、快速的响应/恢复动力学(提高了60倍以上)以及大响应(在1 ppm时提高了12.8倍),特别是在高湿度条件下。分子建模显示,NO相对于O渗透到ITO表面的比例增加,这表明NO的氧化得到可靠防止,并且ZIF-8提供的二次吸附位点促进了NO在ITO上的吸附和解吸。

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