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MXene/金属有机框架杂化气凝胶的协同刻蚀和氢键诱导自组装用于柔性室温气体传感。

Synergistic Etching and Hydrogen Bonding-Induced Self-Assembly of MXene/MOF Hybrid Aerogel for Flexible Room-Temperature Gas Sensing.

机构信息

Department of Chemistry, College of Sciences, Northeastern University, Shenyang, Liaoning 110819, China.

Qingdao Engineering Research Center for New Metallic Functional Materials, Qingdao Binhai University, Qingdao, Shandong 266555, China.

出版信息

ACS Sens. 2024 Jul 26;9(7):3641-3651. doi: 10.1021/acssensors.4c00745. Epub 2024 Jul 5.

Abstract

Limited by insufficient active sites and restricted mechanical strength, designing reliable and wearable gas sensors with high activity and ductility remains a challenge for detecting hazardous gases. In this work, a thermally induced and solvent-assisted oxyanion etching strategy was implemented for selective pore opening in a rigid microporous Cu-based metal-organic framework (referred to as CuM). A conductive CuM/MXene aerogel was then self-assembled through cooperative hydrogen bonding interactions between the carbonyl oxygen atom in PVP grafted on the surface of defect-rich Cu-BTC and the surface functional hydroxyl group on MXene. A flexible NO sensing performance using the CuM/MXene aerogel hybridized sodium alginate hydrogel is finally achieved, demonstrating extraordinary sensitivity ( = 52.47 toward 50 ppm of NO), good selectivity, and rapid response/recovery time (0.9/4.5 s) at room temperature. Compared with commercial sensors, the relative error is less than 7.7%, thereby exhibiting significant potential for application in monitoring toxic and harmful gases. This work not only provides insights for guiding rational synthesis of ideal structure models from MOF composites but also inspires the development of high-performance flexible gas sensors for potential multiscenario applications.

摘要

受活性位点不足和机械强度受限的限制,设计具有高活性和高延展性的可靠可穿戴气体传感器以用于检测危险气体仍然是一项挑战。在这项工作中,实施了一种热诱导和溶剂辅助的阴离子刻蚀策略,用于在刚性微孔 Cu 基金属有机骨架(简称 CuM)中选择性地打开孔。然后,通过表面富含缺陷的 Cu-BTC 上接枝的 PVP 中的羰基氧原子与 MXene 表面的功能羟基之间的协同氢键相互作用,自组装出一种具有导电性的 CuM/MXene 气凝胶。最后,使用 CuM/MXene 气凝胶杂化的海藻酸钠水凝胶实现了对 NO 的柔性传感性能,在室温下对 50 ppm 的 NO 表现出非凡的灵敏度(=52.47)、良好的选择性和快速的响应/恢复时间(0.9/4.5 s)。与商业传感器相比,相对误差小于 7.7%,从而为监测有毒有害气体的应用展示了显著的应用潜力。这项工作不仅为从 MOF 复合材料中指导合理合成理想结构模型提供了思路,而且还为用于潜在多场景应用的高性能柔性气体传感器的发展提供了灵感。

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