Ultra-Trace Determination of Cadmium in Water and Food Samples by a Thin-Film Microextraction Using a Supported Liquid Membrane Combined with Smartphone-Based Colorimetric Detection
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[1] M. Shamsipur,et al. A Natural Deep Eutectic Solvent–based Ultrasound-Vortex-assisted Dispersive Liquid–Liquid Microextraction Method for Ligand-less Pre-concentration and Determination of Traces of Cadmium Ions in Water and Some Food Samples , 2022, Food Analytical Methods.
[2] S. Legnaioli,et al. Evaluation of Thin Film Microextraction for trace elemental analysis of liquid samples using LIBS detection. , 2021, Talanta.
[3] J. Płotka-Wasylka,et al. Complementary green analytical procedure index (ComplexGAPI) and software , 2021, Green Chemistry.
[4] M. Rezayat,et al. Organic solvent supported silica aerogel thin film microextraction: An efficient sample preparation method for ion mobility spectrometry , 2020 .
[5] S. Pedersen‐Bjergaard,et al. Exploiting agarose gel modified with glucose-fructose syrup as a green sorbent in rotating-disk sorptive extraction technique for the determination of trace malondialdehyde in biological and food samples. , 2020, Talanta.
[6] M. Tobiszewski,et al. AGREE—Analytical GREEnness Metric Approach and Software , 2020, Analytical chemistry.
[7] P. Nomngongo,et al. Determination of trace metals in vegetables and water samples using dispersive ultrasound-assisted cloud point-dispersive µ-solid phase extraction coupled with inductively coupled plasma optical emission spectrometry. , 2020, Food chemistry.
[8] A. Zamani,et al. An analytical strategy based on the combination of ultrasound assisted flat membrane liquid phase microextraction and a smartphone reader for trace determination of malondialdehyde. , 2020, Talanta.
[9] M. Saraji,et al. A portable smartphone-based colorimetric sensor for rapid determination of water content in ethanol , 2020 .
[10] J. Barin,et al. Reversed-Phase Dispersive Liquid-Liquid Microextraction (RP-DLLME) as a Green Sample Preparation Method for Multielement Determination in Fish Oil by ICP-OES , 2020, Food Analytical Methods.
[11] R. Lucena,et al. Ultra-trace tellurium preconcentration and speciation analysis in environmental samples with a novel magnetic polymeric ionic liquid nanocomposite and magnetic dispersive micro-solid phase extraction with flow-injection hydride generation atomic fluorescence spectrometry detection , 2019 .
[12] A. Zamani,et al. Hollow fiber liquid-phase microextraction based on the use of a rotating extraction cell: A green approach for trace determination of rhodamine 6G and methylene blue dyes. , 2019, Environmental pollution.
[13] M. Ramezani,et al. Tandem dispersive liquid–liquid microextraction coupled with micro-sampling flame atomic absorption spectrometry for rapid determination of lead(II) and cadmium(II) ions in environmental water samples , 2019, International Journal of Environmental Analytical Chemistry.
[14] M. Saraji,et al. Combination of paper-based thin film microextraction with smartphone-based sensing for sulfite assay in food samples. , 2019, Talanta.
[15] Anastasios Economou,et al. Screen-Printed Electrodes Modified with “Green” Metals for Electrochemical Stripping Analysis of Toxic Elements , 2018, Sensors.
[16] B. Reis,et al. A novel multicommuted flow analysis strategy for the spectrophotometric determination of cadmium in water at µg L-1 levels without using a preconcentration step. , 2018 .
[17] M. Sena,et al. Determination of allura red dye in hard candies by using digital images obtained with a mobile phone and N-PLS , 2017 .
[18] R. Lucena,et al. Paper supported polystyrene membranes for thin film microextraction , 2017 .
[19] M. Yaftian,et al. Electromembrane extraction-preconcentration followed by microvolume UV-Vis spectrophotometric determination of mercury in water and fish samples. , 2017, Food chemistry.
[20] Fariborz Omidi,et al. Application of solvent-assisted dispersive solid phase extraction as a new, fast, simple and reliable preconcentration and trace detection of lead and cadmium ions in fruit and water samples. , 2015, Food chemistry.
[21] M. Soylak,et al. Switchable polarity solvent for liquid phase microextraction of Cd(II) as pyrrolidinedithiocarbamate chelates from environmental samples. , 2015, Analytica chimica acta.
[22] Xiantao Shen,et al. Combination of Electromembrane Extraction and Liquid-Phase Microextraction in a Single Step: Simultaneous Group Separation of Acidic and Basic Drugs. , 2015, Analytical chemistry.
[23] M. Behbahani,et al. Application of mercapto ordered carbohydrate-derived porous carbons for trace detection of cadmium and copper ions in agricultural products. , 2015, Food chemistry.
[24] M. Behbahani,et al. Solid Phase Extraction of Pb(II) and Cd(II) in Food, Soil, and Water Samples Based on 1-(2-Pyridylazo)-2-Naphthol-Functionalized Organic–Inorganic Mesoporous Material with the aid of Experimental Design Methodology , 2015, Food Analytical Methods.
[25] Chun Wang,et al. Poly(vinylidene fluoride) membrane based thin film microextraction for enrichment of benzoylurea insecticides from water samples followed by their determination with HPLC , 2014 .
[26] M. Behbahani,et al. Modified nanoporous carbon as a novel sorbent before solvent-based de-emulsification dispersive liquid–liquid microextraction for ultra-trace detection of cadmium by flame atomic absorption spectrophotometry , 2014 .
[27] M. Saraji,et al. Chemically modified cellulose paper as a thin film microextraction phase. , 2013, Journal of chromatography. A.
[28] B. Rezaei,et al. Combined microporous membrane-based liquid–liquid–liquid microextraction and in situ differential pulse voltammetry for highly sensitive detection of trimipramine , 2013 .
[29] M. Behbahani,et al. Application of a New Functionalized Nanoporous Silica for Simultaneous Trace Separation and Determination of Cd(II), Cu(II), Ni(II), and Pb(II) in Food and Agricultural Products , 2013, Food Analytical Methods.
[30] Jacek Namieśnik,et al. Analytical eco-scale for assessing the greenness of analytical procedures , 2012 .
[31] Xiaodong Wen,et al. Determination of cadmium and copper in water and food samples by dispersive liquid–liquid microextraction combined with UV–vis spectrophotometry , 2011 .
[32] M. Valcárcel,et al. Stir membrane liquid-liquid microextraction. , 2011, Journal of chromatography. A.
[33] M. Valcárcel,et al. Sensitive in-surface infrared monitoring coupled to stir membrane extraction for the selective determination of total hydrocarbon index in waters , 2010, Analytical and bioanalytical chemistry.
[34] N. Teshima,et al. Highly sensitive determination of cadmium and lead in leached solutions from ceramic ware by graphite furnace atomic absorption spectrometry coupled with sequential injection-based solid phase extraction method. , 2010, Analytical sciences : the international journal of the Japan Society for Analytical Chemistry.
[35] V. Arancibia,et al. Stripping voltammetric determination of cadmium in sea water using a carbon paste electrode modified with alginic acid from brown algae , 2010 .
[36] Li-ping Zhou,et al. Rapid and Low Cost Determination of Cadmium in Whole Blood by Hydride Generation Atomic Fluorescence Spectrometry after Ultrasound-Assisted Sample Preparation , 2008 .
[37] A. Das,et al. Synthesis, characterization, and application of a new chelating resin functionalized with dithiooxamide , 2007 .
[38] J. Manzoori,et al. Development of a cloud point extraction and preconcentration method for Cd and Ni prior to flame atomic absorption spectrometric determination , 2004 .
[39] M. Soylak,et al. The uses of 1-(2-pyridylazo) 2-naphtol (PAN) impregnated Ambersorb 563 resin on the solid phase extraction of traces heavy metal ions and their determinations by atomic absorption spectrometry. , 2003, Talanta.
[40] G. Lee,et al. Determination of Lead, Cadmium, and Chromium in Hair Optimized by Simplex Method Using Electrothermal Vaporization-Inductively Coupled Plasma Mass Spectrometry , 2002 .