Zhao Zhipeng, Bao Haoming, Zhao Qian, Fu Hao, Zhou Le, Zhang Hongwen, Li Yue, Cai Weiping
Key Lab of Materials Physics, Anhui Key Lab of Nanomaterials and Nanotechnology, Institute of Solid State Physics, HFIPS, Chinese Academy of Sciences, Hefei 230031, PR China.
University of Science and Technology of China, Hefei 230026, PR China.
ACS Appl Mater Interfaces. 2022 Oct 26;14(42):47999-48010. doi: 10.1021/acsami.2c11682. Epub 2022 Oct 12.
Fast and sensitive detection of gaseous volatile organic compounds (VOCs), based on surface-enhanced Raman spectroscopy (SERS), is still a challenge due to their weak interaction with plasmonic metals and overly small Raman scattering cross sections. Herein, we propose a simple strategy to achieve the SERS-based highly efficient detection of trace benzene-VOCs (B-VOCs) based on a composite chip. The composite chip is designed and fabricated via covering the porous zinc oxide on gold nanoarrays by a one-step solution growth method. Such composite chip shows highly selective capture of gaseous B-VOCs (benzene, toluene, nitrobenzene, xylene, and chlorobenzene, etc.), which leads to the rapid and sensitive SERS responses to them. Typically, this chip can response to gaseous toluene within 30 s, and the lowest detectable concentration is below 10 ppb. Further experiments have revealed that there exists an optimal thickness of the ZnO covering layer for the highly efficient SERS response to the B-VOCs, which is about 150 nm. Also, such a composite chip is recoverable in SERS response and hence reusable. The highly efficient SERS response of the composite chip to the B-VOCs is attributed to the porous structure-enhanced molecular adsorption and the electromagnetic-chemical dual-enhancement mechanism. This work not only presents a practical SERS chip for the efficient detection of the typical B-VOCs but also provides a deep understand the interaction between the B-VOCs and the ZnO as well as the chemical enhancement mechanism.
基于表面增强拉曼光谱(SERS)对气态挥发性有机化合物(VOCs)进行快速灵敏检测仍然是一项挑战,这是因为它们与等离子体金属的相互作用较弱且拉曼散射截面过小。在此,我们提出一种简单策略,基于复合芯片实现基于SERS的痕量苯类挥发性有机化合物(B-VOCs)的高效检测。该复合芯片通过一步溶液生长法在金纳米阵列上覆盖多孔氧化锌来设计和制备。这种复合芯片对气态B-VOCs(苯、甲苯、硝基苯、二甲苯和氯苯等)表现出高度选择性捕获,从而对它们产生快速灵敏的SERS响应。通常,该芯片可在30秒内对气态甲苯作出响应,最低可检测浓度低于10 ppb。进一步实验表明,对于B-VOCs的高效SERS响应,存在一个最佳的ZnO覆盖层厚度,约为150 nm。此外,这种复合芯片在SERS响应方面具有可恢复性,因此可重复使用。复合芯片对B-VOCs的高效SERS响应归因于多孔结构增强的分子吸附以及电磁-化学双重增强机制。这项工作不仅展示了一种用于高效检测典型B-VOCs的实用SERS芯片,还深入理解了B-VOCs与ZnO之间的相互作用以及化学增强机制。