Department of Analytical Chemistry, Physical Chemistry and Chemical Engineering, University of Alcalá, Alcalá de Henares, Madrid, 28871, Spain.
Department of Bioscience and Technology for Food, Agriculture and Environment, University of Teramo, Campus "Aurelio Saliceti" Via R. Balzarini 1, Teramo, 64100, Italy.
Mikrochim Acta. 2024 Jun 1;191(6):361. doi: 10.1007/s00604-024-06427-9.
A one-shot CO laser-based strategy to generate conductive reduced graphene oxide (rGO) decorated with nanoceria (nCe) is proposed. The 2D/0D rGO-nCe films, integrated as catalytic sensing layers in paper-based sensors, were employed for on-site monitoring of indoor fogging treatments against Listeria monocytogenes (Lm), a ubiquitous pathogenic bacterium. The rGO-nCe laser-assisted synthesis was optimized to preserve the rGO film morphological and electron-transfer features and simultaneously integrate catalytic nCe. The films were characterized by microscopical (SEM), spectroscopical (EDX, Raman, and FTIR), and electrochemical techniques. The most performing film was integrated into a nitrocellulose substrate, and the complete sensor was assembled via a combination of xurography and stencil printing. The rGO-nCe sensor's catalytic activity was proved toward the detection of HO, obtaining sensitive determination (LOD = 0.3 µM) and an extended linear range (0.5-1500 µM). Eventually, the rGO-nCe sensor was challenged for the real-time continuous monitoring of hydrogen peroxide aerosol during no-touch fogging treatment conducted following the EU's recommendation for biocidal product use. Treatment effectiveness was proved toward three Lm strains characterized by different origins, i.e., type strain ATCC 7644, clinical strain 338, and food strain 641/6II. The sensor allows for discrimination and quantification treatments at different environmental biocidal amounts and fogging times, and correlates with the microbiological inhibition, promoting the proposed sensor as a useful tool to modulate and monitor no-touch treatments.
提出了一种基于单次 CO 激光的策略,用于生成具有纳米氧化铈(nCe)的导电还原氧化石墨烯(rGO)。二维/零维 rGO-nCe 薄膜被集成在基于纸张的传感器中的催化传感层中,用于现场监测室内雾化处理对单核细胞增生李斯特菌(Lm)的效果,Lm 是一种普遍存在的致病性细菌。优化了 rGO-nCe 激光辅助合成,以保留 rGO 薄膜的形态和电子转移特性,并同时集成催化 nCe。使用显微镜(SEM)、光谱学(EDX、拉曼和 FTIR)和电化学技术对薄膜进行了表征。最有效的薄膜被集成到硝化纤维素基底中,并通过光刻和模板印刷的组合组装完整的传感器。rGO-nCe 传感器的催化活性被证明可用于检测 HO,获得灵敏的测定(LOD=0.3 μM)和扩展的线性范围(0.5-1500 μM)。最终,rGO-nCe 传感器被用于实时连续监测无接触雾化处理期间过氧化氢气溶胶,该处理遵循欧盟对杀生物产品使用的建议。针对三种不同来源的 Lm 菌株(即 ATCC 7644 型菌株、临床菌株 338 和食品菌株 641/6II)证明了处理效果。传感器可以区分和量化不同环境杀生物剂量和雾化时间的处理效果,并与微生物抑制相关,这促进了所提出的传感器作为一种有用的工具来调节和监测无接触处理。