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首页> 外文期刊>Chemosphere >Photochemical decoration of silver nanoparticles on silver vanadate nanorods as an efficient SERS probe for ultrasensitive detection of chloramphenicol residue in real samples
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Photochemical decoration of silver nanoparticles on silver vanadate nanorods as an efficient SERS probe for ultrasensitive detection of chloramphenicol residue in real samples

机译:银纳米粒子上银纳米粒子的光化学装饰作为实际样品中氯霉素残留物超细瘤检测的有效SERS探针

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Aquaculture and farming industries have been seriously threatened by the illegal use of antibiotics as feed-additives to benefit the animal growth. Although various conventional chemical sensing approaches have been widely explored for the trace-level detection of antibiotics, the effective and accurate monitoring techniques are still highly demanded. Herein, we propose a novel surface-enhanced Raman scattering (SERS) substrate with the heterogeneous integration of silver nanoparticles (Ag NPs) on silver vanadate nanorods (beta-AgVO3 NRs) for the ultrasensitive detection of popular antibiotic, chloramphenicol (CAP). The photochemical decoration of Ag NPs on the surface of b-AgVO3 NRs remarkably enhances the Raman signal intensity of CAP molecules by the synergistic action of the mechanisms of electromagnetic and chemical enhancement. The structural features of Ag-NPs@b-AgVO3-NRs favor the formation of hotspots at the interface between NPs and NRs by enhanced surface area and numerous active sites for the interaction with CAP molecules. The SERS measurement of CAP molecules on the Ag-NPs@b-AgVO3Y-NRs shows a trace-level limit of detection (10x10 M), high uniformity (5.29%), good reproducibility (3.89%), and high analytical enhancement factor (2.05 x 10(8)). The proposed SERS substrate possesses excellent detection ability in monitoring real samples like tap water, milk and eye drops. (C) 2021 Elsevier Ltd. All rights reserved.
机译:通过非法使用抗生素作为饲料添加剂的抗生素受益于动物生长,从而严重威胁。虽然已经广泛探索了各种传统的化学传感方法,但对于抗生素的微量级别检测,仍然需要有效和准确的监测技术。在此,我们提出了一种新的表面增强拉曼散射(SERS)底物,其与银纳米粒子(Ag NPS)的银纳米粒子(Ag NPS)的异质整合,用于对流抗生素,氯霉素(帽)的超细敏感检测。 B-AGVO3 NRS表面上Ag NPS的光化学装饰通过电磁和化学增强机制的协同作用,显着提高了盖子分子的拉曼信号强度。 AG-NPS @ B-AGVO3-NRS的结构特征有利于通过增强的表面积和众多活性位点与盖子分子相互作用形成NPS和NRS之间的热点。 AG-NPS @ B-AGVO3Y-NRS上盖子分子的SERs测量显示了痕量检测限(10x10m),高均匀性(5.29%),良好的再现性(3.89%)和高分析增强因子( 2.05 x 10(8))。所提出的SERS底物在监测自来水,牛奶和滴眼液时具有优异的检测能力。 (c)2021 elestvier有限公司保留所有权利。

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