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由疏水核壳染料/MOFs@COFs 复合材料实现的湿度独立型人工嗅觉阵列用于植物病害诊断。

Humidity-Independent Artificial Olfactory Array Enabled by Hydrophobic Core-Shell Dye/MOFs@COFs Composites for Plant Disease Diagnosis.

机构信息

School of Biosystems Engineering and Food Science, Zhejiang University, Hangzhou 310058, PR China.

Key Laboratory of Intelligent Equipment and Robotics for Agriculture of Zhejiang Province, Hangzhou 310058, PR China.

出版信息

ACS Nano. 2022 Sep 27;16(9):14297-14307. doi: 10.1021/acsnano.2c04457. Epub 2022 Aug 31.

DOI:10.1021/acsnano.2c04457
PMID:36043472
Abstract

As a class of important artificial olfactory system, the colorimetric sensor array possesses great potential for commercialization due to its cost-effectiveness and portability. However, when applied to practical applications, the humidity interference from ambient environment and dissatisfactory sensitivity for trace target VOCs are largely unsolved problems. To overcome the problems, we developed a series of dye/MOFs@COFs gas-sensing materials with core-shell structure using a hydrophobization strategy by encapsulation of dye/metal-organic frameworks (MOFs) into hydrophobic covalent organic frameworks (COFs). Benefiting from the hydrophobic property of the COF shell, the dye/MOFs@COFs composites were endowed with excellent humidity-resistance even under 100% relative humidity (RH). Moreover, due to the uniform distribution of dyes on the porous MOFs, the dye/MOFs@COFs sensors also exhibited improved sensitivity at the sub-ppm level, compared with conventional dye sensors. On basis of the excellent humidity-resistance and improved sensitivity, an artificial olfactory array based on dye/MOFs@COFs composites was proven to be a successful practical application in early and accurate detection of wheat scab (1 day after inoculation) by monitoring its released VOC markers. The synthetic strategy for core-shell dye/MOFs@COFs is applicable to a wide range of colorimetric sensor arrays, endowing them with excellent humidity-resistance and sensitivity for the feasibility of practical applications.

摘要

作为一类重要的人工嗅觉系统,比色传感器阵列由于其成本效益和便携性,具有很大的商业化潜力。然而,当应用于实际应用时,环境湿度对传感器的干扰以及痕量目标 VOCs 的灵敏度不足等问题仍然没有得到很好的解决。为了解决这些问题,我们采用疏水化策略,通过将染料/金属有机框架(MOFs)封装到疏水共价有机框架(COFs)中,开发了一系列具有核壳结构的染料/ MOFs@COFs 气体传感材料。得益于 COF 壳的疏水性,即使在相对湿度为 100%的条件下,染料/ MOFs@COFs 复合材料也具有出色的抗湿性。此外,由于染料均匀分布在多孔 MOFs 上,与传统的染料传感器相比,染料/ MOFs@COFs 传感器在亚 ppm 级别的灵敏度也得到了提高。基于出色的抗湿性和提高的灵敏度,基于染料/ MOFs@COFs 复合材料的人工嗅觉阵列被证明是一种成功的实际应用,可通过监测其释放的 VOC 标志物,实现对小麦赤霉病(接种后 1 天)的早期、准确检测。这种核壳结构染料/ MOFs@COFs 的合成策略适用于广泛的比色传感器阵列,赋予它们出色的抗湿性和灵敏度,为实际应用的可行性提供了保障。

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