Smartphone-assisted multicolor hypoxanthine sensing for on-site freshness assessment of aquatic products
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[1] H. Ghourchian,et al. Gold nanorods etching as a powerful signaling process for plasmonic multicolorimetric chemo-/biosensors: Strategies and applications , 2021 .
[2] Zheng-zhong Lin,et al. Colorimetric detection of hypoxanthine in aquatic products based on the mimic enzyme of cobalt-doped carbon nitride , 2021 .
[3] R. Shi,et al. Enzyme-free colorimetric determination of uric acid based on inhibition of gold nanorods etching , 2021 .
[4] Xuxia Zhou,et al. Multicolorimetric sensing of histamine in fishes based on enzymatic etching of gold nanorods , 2021 .
[5] S. Andreescu,et al. Paper-Based Enzyme Biosensor for One-Step Detection of Hypoxanthine in Fresh and Degraded Fish. , 2020, ACS sensors.
[6] Fengyu Tian,et al. Manganese dioxide nanosheet-mediated etching of gold nanorods for a multicolor colorimetric assay of total antioxidant capacity , 2020 .
[7] Lingxin Chen,et al. Ratiometric fluorescence and colorimetry dual-mode assay based on manganese dioxide nanosheets for visual detection of alkaline phosphatase activity , 2020 .
[8] Yi Lu,et al. A fluorescent biosensor based on catalytic activity of platinum nanoparticles for freshness evaluation of aquatic products. , 2019, Food chemistry.
[9] Zhonghua Xue,et al. Gold nanorod etching-based multicolorimetric sensors: strategies and applications , 2019, Journal of Materials Chemistry C.
[10] Longhua Guo,et al. Noble Metal Nanoparticle-Based Multicolor Immunoassays: An Approach toward Visual Quantification of the Analytes with the Naked Eye. , 2019, ACS sensors.
[11] P. Pasdois,et al. Mitochondrial activity as an indicator of fish freshness. , 2019, Food chemistry.
[12] Longhua Guo,et al. A sensing platform for hypoxanthine detection based on amino-functionalized metal organic framework nanosheet with peroxidase mimic and fluorescence properties , 2018, Sensors and Actuators B: Chemical.
[13] Hong Duan,et al. Plasmonic ELISA based on enzyme-assisted etching of Au nanorods for the highly sensitive detection of aflatoxin B1 in corn samples , 2018, Sensors and Actuators B: Chemical.
[14] M. Amjadi,et al. An enzyme-free fluorescent probe based on carbon dots – MnO2 nanosheets for determination of uric acid , 2018 .
[15] Zhenyu Lin,et al. Multicolor biosensor for fish freshness assessment with the naked eye , 2017 .
[16] Hsiao-Wen Zan,et al. One-Minute Fish Freshness Evaluation by Testing the Volatile Amine Gas with an Ultrasensitive Porous-Electrode-Capped Organic Gas Sensor System. , 2017, ACS sensors.
[17] Zhongming Huang,et al. A facile label-free colorimetric method for highly sensitive glutathione detection by using manganese dioxide nanosheets , 2017 .
[18] Longhua Guo,et al. A universal multicolor immunosensor for semiquantitative visual detection of biomarkers with the naked eyes. , 2017, Biosensors & bioelectronics.
[19] Zhenyu Lin,et al. Gold Nanorods as Colorful Chromogenic Substrates for Semiquantitative Detection of Nucleic Acids, Proteins, and Small Molecules with the Naked Eye. , 2016, Analytical chemistry.
[20] Lingxin Chen,et al. Ultrasensitive Visual Sensing of Molybdate Based on Enzymatic-like Etching of Gold Nanorods. , 2015, Langmuir : the ACS journal of surfaces and colloids.
[21] Ru-Qin Yu,et al. MnO2-Nanosheet-Modified Upconversion Nanosystem for Sensitive Turn-On Fluorescence Detection of H2O2 and Glucose in Blood. , 2015, ACS applied materials & interfaces.
[22] K. V. Lalitha,et al. Synthesis of polyaniline hybrid composite: A new and efficient sensor for the detection of total volatile basic nitrogen molecules , 2015 .
[23] S. Adeloju,et al. Mediated xanthine oxidase potentiometric biosensors for hypoxanthine based on ferrocene carboxylic acid modified electrode. , 2012, Food chemistry.
[24] Marc Vendrell,et al. Intracellular glutathione detection using MnO(2)-nanosheet-modified upconversion nanoparticles. , 2011, Journal of the American Chemical Society.
[25] Andrea R. Gerson,et al. Resolving surface chemical states in XPS analysis of first row transition metals, oxides and hydroxides: Sc, Ti, V, Cu and Zn , 2010 .
[26] K. Kawai,et al. Improvement of fish freshness determination method by the application of amorphous freeze-dried enzymes. , 2010, Journal of agricultural and food chemistry.
[27] József Farkas,et al. Near infrared and fluorescence spectroscopic methods and electronic nose technology for monitoring foods , 2009 .
[28] Guonan Chen,et al. Electrochemiluminescent biosensor for hypoxanthine based on the electrically heated carbon paste electrode modified with xanthine oxidase. , 2008, Analytical chemistry.
[29] E. Martinsdóttir,et al. Development of Quality Index Method (QIM) scheme for fresh cod (Gadus morhua) fillets and application in shelf life study , 2007 .
[30] Il-Hoon Cho,et al. Plastic ELISA-on-a-chip based on sequential cross-flow chromatography. , 2006, Analytical chemistry.
[31] Yang Tao,et al. A thin-layer spectroelectrochemical study of 3,3', 5,5'-tetramethylbenzidine at SnO2:F film optically transparent electrode , 2004 .
[32] Mostafa A. El-Sayed,et al. Preparation and Growth Mechanism of Gold Nanorods (NRs) Using Seed-Mediated Growth Method , 2003 .
[33] F. Toldrá,et al. ATP Metabolites During Aging of Exudative and Nonexudative Pork Meats , 2001 .
[34] P. Tuzhi,et al. Silk fibroin/cellulose acetate membrane electrodes incorporating xanthine oxidase for the determination of fish freshness , 1998 .
[35] J. Luong,et al. Determination of nucleotides in fish tissues using capillary electrophoresis. , 1990, Analytical chemistry.
[36] Hideaki Matsuoka,et al. Determination of fish freshness with an enzyme sensor system , 1984 .
[37] C. Gonnet,et al. High-performance liquid chromatographic determination of hypoxanthine and xanthine in biological fluids. , 1982, Journal of chromatography.