Zinc oxide nanostructure thin films were prepared on quartz slides via chemical vapour deposition(CVD). Various nanostructures such as nanorod, nanowires and surface-rough nanocubes, could be obtained under carefully ...Zinc oxide nanostructure thin films were prepared on quartz slides via chemical vapour deposition(CVD). Various nanostructures such as nanorod, nanowires and surface-rough nanocubes, could be obtained under carefully tuning experimental conditions. The surface-enhanced Raman scattering(SERS) character of these films was investigated by using 4-mercaptopyridine(4-MPY) as the probing molecule.展开更多
Environmental pollution, a major problem worldwide, poses considerable threat to human health and ecological environment. Efficient and reliable detection technologies, which focus on the appearance of emerging enviro...Environmental pollution, a major problem worldwide, poses considerable threat to human health and ecological environment. Efficient and reliable detection technologies, which focus on the appearance of emerging environmental and trace pollutants, are urgently needed. Surface-enhanced Raman scattering(SERS) has become an attractive analytical tool for sensing trace targets in environmental field because of its inherent molecular fingerprint specificity and high sensitivity. In this review, we focused on the recent developments in the integration of magnetic nanoparticles(MNPs) with SERS for facilitating sensitive detection of environmental pollutants. An overview and classification of different types of MNPs for SERS detection were initially provided, enabling us to categorize the huge amount of literature that was available in the interdisciplinary research field of MNPs based SERS technology. Then, the basic working principles and applications of MNPs in SERS detection were presented. Subsequently, the detection technologies integrating MNPs with SERS that eventually were used for the detection of various environmental pollutions were reviewed. Finally, the advantages of MNP-basedSERS detection technology for environmental pollutants were concluded, and the current challenges and future outlook of this technology in practical applications were highlighted. The application of the MNPsbasedSERS techniques for environmental analysis will be significantly advanced with the great progresses of the nanotechnologies, optics, and materials.展开更多
文摘Zinc oxide nanostructure thin films were prepared on quartz slides via chemical vapour deposition(CVD). Various nanostructures such as nanorod, nanowires and surface-rough nanocubes, could be obtained under carefully tuning experimental conditions. The surface-enhanced Raman scattering(SERS) character of these films was investigated by using 4-mercaptopyridine(4-MPY) as the probing molecule.
基金financially supported by the National Natural Science Foundation of China (Nos. 21675171, 21277173)the National Instrument Major Project of China (No. 2012YQ3011105)+2 种基金the Fundamental Research Funds for the Central Universitiesthe Research Funds of Renmin University of China (No. 15XNLD04)the Special Fund of State Key Joint Laboratory of Environment Simulation and Pollution Control (No. 17K06ESPCT)
文摘Environmental pollution, a major problem worldwide, poses considerable threat to human health and ecological environment. Efficient and reliable detection technologies, which focus on the appearance of emerging environmental and trace pollutants, are urgently needed. Surface-enhanced Raman scattering(SERS) has become an attractive analytical tool for sensing trace targets in environmental field because of its inherent molecular fingerprint specificity and high sensitivity. In this review, we focused on the recent developments in the integration of magnetic nanoparticles(MNPs) with SERS for facilitating sensitive detection of environmental pollutants. An overview and classification of different types of MNPs for SERS detection were initially provided, enabling us to categorize the huge amount of literature that was available in the interdisciplinary research field of MNPs based SERS technology. Then, the basic working principles and applications of MNPs in SERS detection were presented. Subsequently, the detection technologies integrating MNPs with SERS that eventually were used for the detection of various environmental pollutions were reviewed. Finally, the advantages of MNP-basedSERS detection technology for environmental pollutants were concluded, and the current challenges and future outlook of this technology in practical applications were highlighted. The application of the MNPsbasedSERS techniques for environmental analysis will be significantly advanced with the great progresses of the nanotechnologies, optics, and materials.