Journal of Atmospheric and Environmental Optics, Volume. 19, Issue 3, 314(2024)
Highly sensitive and stable measurement of Cd in water based on electrodeposition enrichment-LIBS technology
[1] A A Meharg, G Norton, C Deacon et al. Variation in rice cadmium related to human exposure. Environmental Science & Technology, 47, 5613-5618(2013).
[2] G Bertin, D Averbeck. Cadmium: Cellular effects, modifications of biomolecules, modulation of DNA repair and genotoxic consequences (a review). Biochimie, 88, 1549-1559(2006).
[3] D G Da Silva, M M S Junior, L O B Silva et al. Determination of cadmium in rice by electrothermal atomic absorption spectrometry using aluminum as permanent modifier. Analytical Methods, 3, 2495-2500(2011).
[4] X A Yang, M B Chi, Q Q Wang et al. Efficient generation of volatile species for cadmium analysis in seafood and rice samples by a modified chemical vapor generation system coupled with atomic fluorescence spectrometry. Analytica Chimica Acta, 869, 11-20(2015).
[5] Y X Gao. Investigation of Functionalized Au/Ag Nanoparticles for Colormeric Detection of Heavy Metal Oons in Aqueous Solutions(2014).
[6] H J Qi, W W Chen, L J Yue et al. A review on AuNPs colorimetry-based rapid determination of heavy metals in water. Environmental Chemistry, 32, 21-28(2013).
[7] H B Li. The Design of Automatic Instruments Based on Electrochemical and Ccolorimetric Principles for Heavy Metals Detection in Water(2015).
[8] G Li, J Jiang, Q Zhang et al. High sensitive detection of trace Hg(Ⅱ) in natural water with laser ignition assisted spark-induced breakdown spectroscopy. Chinese Journal of Lasers, 38, 0715002(2011).
[9] F Zhao, Q Zhang, W Xiong et al. High sensitive detection of trace heavy metals in water by laser-induced breakdown spectroscopy. Environmental Science & Technology, 33, 137-140(2010).
[10] W Xiong, Q Zhang, F Zhao et al. High sensitive detection of trace hexavalent chromium ion in water by laser-induced breakdown spectroscopy. Journal of Atomic and Molecular Physics, 27, 283-287(2010).
[11] S U Yeşiller, S Yalçın. Optimization of chemical and instrumental parameters in hydride generation laser-induced breakdown spectrometry for the determination of arsenic, antimony, lead and germanium in aqueous samples. Analytica Chimica Acta, 770, 7-17(2013).
[12] A De Giacomo, C Koral, G Valenza et al. Nanoparticle enhanced laser-induced breakdown spectroscopy for microdrop analysis at subppm level. Analytical Chemistry, 88, 5251-5257(2016).
[13] S C Jantzi, V Motto-Ros, F Trichard et al. Sample treatment and preparation for laser-induced breakdown spectroscopy. Spectrochimica Acta Part B: Atomic Spectroscopy, 115, 52-63(2016).
[14] R X Yi, X Y Yang, R Zhou et al. Determination of trace available heavy metals in soil using laser-induced breakdown spectroscopy assisted with phase transformation method. Analytical Chemistry, 90, 7080-7085(2018).
[15] A Botto, B Campanella, S Legnaioli et al. Applications of laser-induced breakdown spectroscopy in cultural heritage and archaeology: A critical review. Journal of Analytical Atomic Spectrometry, 34, 81-103(2019).
[16] R Kaegi, T Wagner, B Hetzer et al. Size, number and chemical composition of nanosized particles in drinking water determined by analytical microscopy and LIBD. Water Research, 42, 2778-2786(2008).
[17] X J Chen, Q H He, T Guan et al. Dual-digital encoded suspension array based on Raman spectroscopy and laser induced breakdown spectroscopy for multiplexed biodetection. Sensors and Actuators B: Chemical, 282, 457-468(2019).
[18] D S Meng, N J Zhao, Y Y Wang et al. On-line/on-site analysis of heavy metals in water and soils by laser induced breakdown spectroscopy. Spectrochimica Acta Part B, 39-45(2017).
[19] L Fang, N J Zhao, M J Ma et al. Detection of heavy metals in water samples by laser-induced breakdown spectroscopy combined with annular groove graphite flakes. Plasma Science and Technology, 21, 034002(2019).
[20] Y Jia. Functional Design and Verification of Industrial Wastewater Heavy Metal Online Monitoring System Based on LIBS(2018).
[22] Y Y Wang, N J Zhao, L Fang et al. Study on the sensitivity of LIBS detection of heavy metals in water based on electrode enrichment. Spectroscopy and Spectral Analysis, 37, 884-888(2017).
[23] M Ramli, A Khumaeni, K H Kurniawan et al. Spectrochemical analysis of Cs in water and soil using low pressure laser induced breakdown spectroscopy. Spectrochimica Acta, 132, 8-12(2017).
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Yang SHU, Li FANG, Mingjun MA, Deshuo MENG, Nanjing ZHAO. Highly sensitive and stable measurement of Cd in water based on electrodeposition enrichment-LIBS technology[J]. Journal of Atmospheric and Environmental Optics, 2024, 19(3): 314
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Received: May. 17, 2021
Accepted: --
Published Online: Jul. 17, 2024
The Author Email: ZHAO Nanjing (njzhao@aiofm.ac.cn)