Liu Xin, Li Tiehu, Liu Yuhui, Sun Yiting, Han Yanying, Lee Tung Chun, Zada Amir, Yuan Zeqi, Ye Fei, Chen Jiahe, Dang Alei
School of Materials Science and Engineering, Northwestern Polytechnical University, Xi'an 710072, PR China; Shannxi Engineering laboratory for Graphene New Carbon Materials and Applications, School of Materials Science and Engineering, Northwestern Polytechnical University, Xi'an 710072, PR China.
School of Materials Science and Engineering, Northwestern Polytechnical University, Xi'an 710072, PR China.
J Hazard Mater. 2024 May 5;469:133893. doi: 10.1016/j.jhazmat.2024.133893. Epub 2024 Feb 25.
Sensitive and rapid identification of volatile organic compounds (VOCs) at ppm level with complex composition is vital in various fields ranging from respiratory diagnosis to environmental safety. Herein, we demonstrate a SERS gas sensor with size-selective and multiplexed identification capabilities for VOCs by executing the pre-enrichment strategy. In particular, the macro-mesoporous structure of graphene aerogel and micropores of metal-organic frameworks (MOFs) significantly improved the enrichment capacity (1.68 mmol/g for toluene) of various VOCs near the plasmonic hotspots. On the other hand, molecular MOFs-based filters with different pore sizes could be realized by adjusting the ligands to exclude undesired interfering molecules in various detection environments. Combining these merits, graphene/AuNPs@ZIF-8 aerogel gas sensor exhibited outstanding label-free sensitivity (up to 0.1 ppm toluene) and high stability (RSD=14.8%, after 45 days storage at room temperature for 10 cycles) and allowed simultaneous identification of multiple VOCs in a single SERS measurement with high accuracy (error < 7.2%). We visualize that this work will tackle the dilemma between sensitivity and detection efficiency of gas sensors and will inspire the design of next-generation SERS technology for selective and multiplexed detection of VOCs.
在从呼吸诊断到环境安全等各个领域,灵敏且快速地识别组成复杂的百万分之一级挥发性有机化合物(VOCs)至关重要。在此,我们展示了一种通过执行预富集策略对VOCs具有尺寸选择性和多重识别能力的表面增强拉曼光谱(SERS)气体传感器。特别地,石墨烯气凝胶的宏观介孔结构和金属有机框架(MOFs)的微孔显著提高了等离子体热点附近各种VOCs的富集能力(甲苯为1.68 mmol/g)。另一方面,通过调整配体可以实现具有不同孔径的基于分子MOFs的过滤器,以在各种检测环境中排除不需要的干扰分子。结合这些优点,石墨烯/AuNPs@ZIF-8气凝胶气体传感器表现出出色的无标记灵敏度(甲苯高达0.1 ppm)和高稳定性(室温储存45天后进行10次循环,相对标准偏差RSD = 14.8%),并且能够在单次SERS测量中同时高精度地识别多种VOCs(误差<7.2%)。我们预计这项工作将解决气体传感器灵敏度和检测效率之间的困境,并将激发下一代用于选择性和多重检测VOCs的SERS技术的设计。