Food electroanalysis: sense and simplicity.
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[1] Alberto Escarpa,et al. Microchips for CE: Breakthroughs in real‐world food analysis , 2008, Electrophoresis.
[2] María Cristina González,et al. Electrochemical valveless flow microsystems for ultra fast and accurate analysis of total isoflavones with integrated calibration. , 2007, The Analyst.
[3] Alberto Escarpa,et al. Fast and selective microfluidic chips for electrochemical antioxidant sensing in complex samples. , 2010, Analytical chemistry.
[4] A. Escarpa,et al. Disposable electrochemical detectors based on nickel nanowires for carbohydrate sensing. , 2011, Biosensors & bioelectronics.
[5] Martin Pumera,et al. Carbon nanotube disposable detectors in microchip capillary electrophoresis for water‐soluble vitamin determination: Analytical possibilities in pharmaceutical quality control , 2008, Electrophoresis.
[6] A. Escarpa,et al. Electrochemical Screening of Biomarkers in Chemotype Mexican Oregano Oils on Single‐Walled Carbon Nanotubes Screen‐Printed Electrodes , 2011 .
[7] Andreas Manz,et al. Scaling and the design of miniaturized chemical-analysis systems , 2006, Nature.
[8] T. Ichihashi,et al. Single-shell carbon nanotubes of 1-nm diameter , 1993, Nature.
[9] S. Iijima. Helical microtubules of graphitic carbon , 1991, Nature.
[10] S. Mannino,et al. Striped alloy nanowire optical reflectance barcodes prepared from a single plating solution. , 2008, Small.
[11] Alberto Escarpa,et al. Integrated electrokinetic magnetic bead-based electrochemical immunoassay on microfluidic chips for reliable control of permitted levels of zearalenone in infant foods. , 2011, The Analyst.
[12] Alberto Escarpa,et al. Simplified calibration and analysis on screen-printed disposable platforms for electrochemical magnetic bead-based immunosensing of zearalenone in baby food samples. , 2010, Biosensors & bioelectronics.
[13] Martin Pumera,et al. Effects of heterogeneous electron‐transfer rate on the resolution of electrophoretic separations based on microfluidics with end‐column electrochemical detection , 2009, Electrophoresis.
[14] Martin Pumera,et al. Nanomaterials as electrochemical detectors in microfluidics and CE: Fundamentals, designs, and applications , 2009, Electrophoresis.
[16] María Cristina González,et al. Evaluation of Accuracy of Electrochemical Isoflavonoid Index for the Determination of Total Isoflavones in Soy Samples , 2007 .
[17] Martin Pumera,et al. Influence of nitric acid treatment of carbon nanotubes on their physico-chemical properties. , 2009, Journal of nanoscience and nanotechnology.
[18] María Cristina González,et al. Direct Electrochemical Sensing and Detection of Natural Antioxidants and Antioxidant Capacity in Vitro Systems , 2007 .
[19] A. Manz,et al. Miniaturized total chemical analysis systems: A novel concept for chemical sensing , 1990 .
[20] Alberto Escarpa,et al. CE microchips: An opened gate to food analysis , 2007, Electrophoresis.
[21] María Cristina González,et al. Electrochemical approach for discriminating and measuring predominant flavonoids and phenolic acids using differential pulse voltammetry: towards an electrochemical index of natural antioxidants , 2004 .
[22] C. Banks,et al. New electrodes for old: from carbon nanotubes to edge plane pyrolytic graphite. , 2006, The Analyst.
[23] Martin Pumera,et al. Towards an ultrasensitive method for the determination of metal impurities in carbon nanotubes. , 2008, Small.
[24] Joseph Wang,et al. Adaptive Nanowires for On-Demand Control of Electrochemical Microsystems , 2008 .
[25] Alberto Escarpa,et al. electrochemical index as a screening method to determine total polyphenolics in foods : A proposal , 2005 .
[26] Alberto Escarpa,et al. Fast and simultaneous detection of prominent natural antioxidants using analytical microsystems for capillary electrophoresis with a glassy carbon electrode: A new gateway to food environments , 2005, Electrophoresis.
[27] Angel Ríos,et al. Fast single run of vanilla fingerprint markers on microfluidic‐electrochemistry chip for confirmation of common frauds , 2009, Electrophoresis.
[28] S. Buratti,et al. A new method for the evaluation of the “Antioxidant Power” of wines , 1998 .
[29] Angel Ríos,et al. Challenges of analytical microsystems , 2006 .
[30] Bart Nicolai,et al. Microfluidic analytical systems for food analysis , 2011 .
[31] Alberto Escarpa,et al. Electrochemical microfluidic chips coupled to magnetic bead-based ELISA to control allowable levels of zearalenone in baby foods using simplified calibration. , 2009, The Analyst.
[32] G. Whitesides. The origins and the future of microfluidics , 2006, Nature.
[33] A. Escarpa,et al. Electrochemical immunoassay using magnetic beads for the determination of zearalenone in baby food: an anticipated analytical tool for food safety. , 2009, Analytica chimica acta.
[34] P. Yáñez‐Sedeño,et al. Analytical Applications of Cylindrical Carbon Fiber Microelectrodes. Simultaneous Voltammetric Determination of Phenolic Antioxidants in Food , 1995 .
[35] N. H. Velthorst,et al. On-line dialysis-SPE-CE of acidic drugs in biological samples. , 1999, The Analyst.
[36] Martin Pumera,et al. Food analysis on microfluidic devices using ultrasensitive carbon nanotubes detectors. , 2007, Analytical chemistry.
[37] Jonathan P. Metters,et al. New directions in screen printed electroanalytical sensors: an overview of recent developments. , 2011, The Analyst.
[38] María Cristina González,et al. Electroanalytical Approach to Evaluate Antioxidant Capacity in Honeys: Proposal of an Antioxidant Index , 2006 .
[39] Dejian Huang,et al. The chemistry behind antioxidant capacity assays. , 2005, Journal of agricultural and food chemistry.
[40] Alberto Escarpa,et al. A fast and reliable route integrating calibration and analysis protocols for water‐soluble vitamin determination on microchip‐electrochemistry platforms , 2006, Electrophoresis.
[41] Martin Pumera,et al. Micro- and nanotechnology in electrochemical detection science. , 2007, Talanta.
[42] Richard G Compton,et al. Metal nanoparticles and related materials supported on carbon nanotubes: methods and applications. , 2006, Small.
[43] Richard G Compton,et al. Oxygenated edge plane sites slow the electron transfer of the ferro-/ferricyanide redox couple at graphite electrodes. , 2006, Chemphyschem : a European journal of chemical physics and physical chemistry.
[44] Alberto Escarpa,et al. Real sample analysis on microfluidic devices. , 2007, Talanta.
[45] María Cristina González,et al. Rapid sample screening method for authenticity controlling vanilla flavors using a CE microchip approach with electrochemical detection , 2007, Electrophoresis.
[46] Martin Pumera,et al. Towards lab-on-a-chip approaches in real analytical domains based on microfluidic chips/electrochemical multi-walled carbon nanotube platforms. , 2009, Lab on a chip.
[47] A. Escarpa,et al. Electrochemical detection in capillary electrophoresis on microchips , 2005 .
[48] M. Pumera,et al. The preferential electrocatalytic behaviour of graphite and multiwalled carbon nanotubes on enediol groups and their analytical implications in real domains. , 2009, The Analyst.