Instituto de Nanociencia y Materiales de Aragón (INMA), CSIC-Universidad de Zaragoza, 50009 Zaragoza, Spain.
Departamento de Ingeniería Química y Tecnologías del Medio Ambiente, Universidad de Zaragoza, Campus Río Ebro-Edificio I+D+i, C/ Mariano Esquillor s/n, 50018 Zaragoza, Spain.
ACS Sens. 2021 Jun 25;6(6):2241-2251. doi: 10.1021/acssensors.1c00178. Epub 2021 May 27.
Surface-enhanced Raman scattering (SERS) is a powerful spectroscopic technique for selective detection and quantification of molecules at extremely low concentrations. However, practical SERS applications for gaseous chemicals with small cross section is still in its early stages. We herein report a plasmonic-sorbent thin-film platform with integrated Raman internal standard with outstanding SERS sensing capabilities for chemical warfare agents (CWA) simulants. The thin film is constituted of close-packed core-shell Au@Ag nanorods individually encapsulated within a ZIF-8 framework (Au@Ag@ZIF-8). While the Au@Ag nanoparticles amplify the Raman signal of molecules located near their surface, the ZIF-8 framework plays a key role in the trapping of the dimethyl methylphosphonate (DMMP) or 2-chloroethyl ethyl sulfide (CEES) from the gas phase as well as Raman internal standard. The underlying adsorption mechanism of the molecules within the ZIF-8 framework as well as the interaction between DMMP and Ag surface are investigated by computational simulations. Outstanding SERS sensing capabilities of Au@Ag@ZIF-8 thin films, in terms of response time, quantification limit, reproducibility, and recyclability, are demonstrated for dimethyl methylphosphonate (DMMP) and 2-chloroethyl ethyl sulfide (CEES), selected as CWA simulants of sarin gas and mustard gas, respectively. A limit of detection (LOD) of 0.2 ppbV is reported for DMMP. Additionally, experiments performed with portable Raman equipment detect 2.5 ppmV for DMMP in ambient air and 76 ppbV for CEES in N, with response times of 21 and 54 s, respectively. This proof of concept opens the door for handheld SERS-based gas sensing at ultralow concentrations in practical applications, such as homeland security, critical infrastructure protection, chemical process monitoring, or personalized medicine.
表面增强拉曼散射(SERS)是一种强大的光谱技术,可用于极低浓度下分子的选择性检测和定量。然而,具有小横截面积的气态化学物质的实际 SERS 应用仍处于早期阶段。本文报道了一种具有集成 Raman 内标功能的等离子体吸附剂薄膜平台,该平台具有出色的 SERS 传感能力,可用于化学战剂(CWA)模拟物。该薄膜由单独封装在 ZIF-8 框架内的紧密堆积核壳 Au@Ag 纳米棒组成(Au@Ag@ZIF-8)。虽然 Au@Ag 纳米颗粒增强了位于其表面附近的分子的 Raman 信号,但 ZIF-8 框架在气相中二甲基甲基膦酸酯(DMMP)或 2-氯乙基乙基硫醚(CEES)的捕获以及 Raman 内标方面起着关键作用。通过计算模拟研究了分子在 ZIF-8 框架内的吸附机制以及 DMMP 与 Ag 表面之间的相互作用。Au@Ag@ZIF-8 薄膜在响应时间、定量限、重现性和可回收性方面表现出出色的 SERS 传感能力,用于二甲基甲基膦酸酯(DMMP)和 2-氯乙基乙基硫醚(CEES),分别为沙林气体和芥子气的 CWA 模拟物。报告了 DMMP 的检测限(LOD)为 0.2 ppbV。此外,使用便携式 Raman 设备进行的实验在环境空气中检测到 2.5 ppmV 的 DMMP 和 N2 中的 76 ppbV 的 CEES,响应时间分别为 21 和 54 s。该概念验证为在实际应用中(如国土安全、关键基础设施保护、化学过程监测或个性化医疗)进行超低浓度手持式 SERS 气体传感开辟了道路。