Kong Lei, Yu Chengyue, Chen Yupeng, Zhu Zhongpeng, Jiang Lei
University of Science and Technology of China, Hefei, 230026, China.
Suzhou Institute for Advanced Research, University of Science and Technology of China, Jiangsu, 215123, China.
Small. 2024 Dec;20(52):e2407021. doi: 10.1002/smll.202407021. Epub 2024 Oct 23.
Metal-organic frameworks (MOFs) hold significant promise in the realm of gas sensing. However, current understanding of their sensing mechanisms remains limited. Furthermore, the large-scale fabrication of MOFs is hampered by their inadequate mechanical properties. These two challenges contribute to the sluggish development of MOF-based gas-sensing materials. In this review, the selection of metal ions and organic ligands for designing MOFs is first presented, deepening the understanding of the interactions between different metal ions/organic ligands and target gases. Subsequently, the typical interfacial synthesis strategies (gas-solid, gas-liquid, solid-liquid interfaces) are provided, highlighting the potential for constructing MOF membranes on superhydrophobic and/or superhydrophilic substrates. Then, a multi-scale structure design strategies is proposed, including multi-dimensional membrane design and heterogeneous membrane design, to improve sensing performance through enhanced interfacial mass transfer and specific gas sieving. This strategy is anticipated to augment the task-specific capabilities of MOF-based materials in complex environments. Finally, several key future research directions are outlined with the aim not only to further investigate the underlying sensing principles of MOF membranes but also to achieve efficient detection of target gases amidst interfering gases and elevated moisture levels.
金属有机框架材料(MOFs)在气体传感领域具有巨大的潜力。然而,目前对其传感机制的理解仍然有限。此外,MOFs的大规模制备受到其机械性能不足的阻碍。这两个挑战导致了基于MOF的气体传感材料的发展缓慢。在这篇综述中,首先介绍了用于设计MOFs的金属离子和有机配体的选择,加深了对不同金属离子/有机配体与目标气体之间相互作用的理解。随后,提供了典型的界面合成策略(气-固、气-液、固-液界面),突出了在超疏水和/或超亲水基底上构建MOF膜的潜力。然后,提出了一种多尺度结构设计策略,包括多维膜设计和异质膜设计,以通过增强界面传质和特定气体筛分来提高传感性能。预计该策略将增强基于MOF的材料在复杂环境中的特定任务能力。最后,概述了几个未来的关键研究方向,目的不仅是进一步研究MOF膜的潜在传感原理,而且是在干扰气体和高湿度水平下实现对目标气体的有效检测。