Construction of an optical sensor for copper determination in environmental, food, and biological samples based on the covalently immobilized 2-(2-benzothiazolylazo)-3-hydroxyphenol in agarose
暂无分享,去创建一个
[1] Xinhua Liu,et al. A dual-channel chemosensor based on 8-hydroxyquinoline for fluorescent detection of Hg2+ and colorimetric recognition of Cu2. , 2020, Spectrochimica acta. Part A, Molecular and biomolecular spectroscopy.
[2] L. Tan,et al. Reflectance chemosensor based on bis-thiourea derivative as ionophore for copper(II) ion detection , 2020 .
[3] Tian Gan,et al. Highly selective fluorimetric and colorimetric sensing of mercury(II) by exploiting the self-assembly-induced emission of 4-chlorothiophenol capped copper nanoclusters , 2020, Microchimica Acta.
[4] N. Ward,et al. Determination of arsenic, copper and lead in the water of villages of Chalkidiki, Greece , 2019, Open Journal of Chemistry.
[5] V. Yılmaz,et al. Electrochemical Determination of Copper(II) in Water Samples Using a Novel Ion-Selective Electrode Based on a Graphite Oxide–Imprinted Polymer Composite , 2018 .
[6] M. Ganjali,et al. Design of a novel optical sensor for determination of trace amounts of copper by UV–visible spectrophotometry in real samples , 2018 .
[7] E. Cassetta,et al. Patients with Increased Non-Ceruloplasmin Copper Appear a Distinct Sub-Group of Alzheimer's Disease: A Neuroimaging Study. , 2017, Current Alzheimer research.
[8] M. Ghaedi,et al. Highly selective and sensitive determination of copper ion by two novel optical sensors , 2017 .
[9] K. Dashtian,et al. Preparation and characterization of a novel optical chemical sensor for determination of trace amounts of Praseodymium ion by UV/Vis spectrophotometry , 2017 .
[10] Thawatchai Tuntulani,et al. Cysteamine capped CdS quantum dots as a fluorescence sensor for the determination of copper ion exploiting fluorescence enhancement and long-wave spectral shifts. , 2016, Spectrochimica acta. Part A, Molecular and biomolecular spectroscopy.
[11] R. Zare‐Dorabei,et al. Highly efficient simultaneous ultrasonic-assisted adsorption of Pb(II), Cd(II), Ni(II) and Cu (II) ions from aqueous solutions by graphene oxide modified with 2,2'-dipyridylamine: Central composite design optimization. , 2016, Ultrasonics sonochemistry.
[12] W. Khairul,et al. THEORETICAL AND EXPERIMENTAL INVESTIGATION OF PYRIDYL-THIOUREA DERIVATIVES AS IONOPHORES FOR Cu(II) ION DETECTION , 2016 .
[13] K. Gharanjig,et al. A novel Ag⁺ cation sensor based on polyamidoamine dendrimer modified with 1,8-naphthalimide derivatives. , 2016, Spectrochimica acta. Part A, Molecular and biomolecular spectroscopy.
[14] Zhiqiang Zhang,et al. A reversible fluorescence chemosensor for sequentially quantitative monitoring copper and sulfide in living cells. , 2015, Talanta.
[15] Susanne A Schneider,et al. The neurotoxicity of iron, copper and manganese in Parkinson's and Wilson's diseases. , 2015, Journal of trace elements in medicine and biology : organ of the Society for Minerals and Trace Elements.
[16] M. Ganjali,et al. Design of a novel optical sensor for determination of trace amounts of copper by UV/vis spectrophotometry in the real samples , 2015 .
[17] Ashutosh Kumar Singh,et al. A novel optical sensor for copper ions based on phthalocyanine tetrasulfonic acid , 2015 .
[18] A. Amin. Novel approach for the determination of zirconium by solid-phase spectrophotometry , 2015 .
[19] M. Ghaedi,et al. A novel PVC-membrane optical sensor for high sensitive and selective determination of Cu2 + ion based on synthesized (E)-N′-(pyridin-2-ylmethylene)isonicotin-ohydrazide , 2014 .
[20] A. Ulrich,et al. Minimally-invasive Laser Ablation Inductively Coupled Plasma Mass Spectrometry analysis of model ancient copper alloys , 2014 .
[21] C. P. Rao,et al. Chemosensing ability of hydroxynaphthylidene derivatives of hydrazine towards Cu2+: Experimental and computational studies , 2014, Journal of Chemical Sciences.
[22] R. Dringen,et al. Metabolism and functions of copper in brain , 2014, Progress in Neurobiology.
[23] K. Alizadeh,et al. A new triazene-1-oxide derivative, immobilized on the triacetyl cellulose membrane as an optical Ni2+ sensor , 2014 .
[24] Sandeep Kumar,et al. Perylene Diimide Appended with 8-Hydroxyquinoline for Ratiometric Detection of Cu2+ Ions and Metal Displacement Driven “Turn on” Cyanide Sensing , 2014, Journal of Fluorescence.
[25] L. Heng,et al. A reflectometric ion sensor for potassium based on acrylic microspheres , 2014 .
[26] K. Ghosh,et al. Anthraquinone coupled benzothiazole-based receptor for selective sensing of Cu2+ , 2013, Journal of Inclusion Phenomena and Macrocyclic Chemistry.
[27] P. Zhou,et al. New Application of 2-(4-N-Phenyl-3-thiosemicarbazone)-8-hydroxyquinoline as a Sensor for Relay Recognition of Cu 2+ and Sulfide in Aqueous Solution , 2013 .
[28] L. Tan,et al. Reflectance based optical fibre sensor for ammonium ion using solid-state Riegler's reagent , 2012 .
[29] Prem N. Basa,et al. Differential sensing of Zn(II) and Cu(II) via two independent mechanisms. , 2012, The Journal of organic chemistry.
[30] Weisheng Liu,et al. An efficient sensor for Zn2+ and Cu2+ based on different binding modes. , 2011, Dalton transactions.
[31] Kiomars Zargoosh,et al. High sensitive optode for selective determination of Ni2+ based on the covalently immobilized thionine in agarose membrane , 2011 .
[32] P. Norouzi,et al. Design of a novel optical sensor for determination of trace gadolinium. , 2009, Journal of hazardous materials.
[33] Ramaier Narayanaswamy,et al. L-Cysteine-capped ZnS quantum dots based fluorescence sensor for Cu2+ ion , 2009 .
[34] N. Goudarzi,et al. Development and characterization of a copper optical sensor based on immobilization of synthesized 1-phenyl-1,2-propanedione-2-oxime thiosemicarbazone on a triacetylcellulose membrane , 2009 .
[35] P. Oliveira,et al. Peat as a natural solid-phase for copper preconcentration and determination in a multicommuted flow system coupled to flame atomic absorption spectrometry. , 2009, Analytica chimica acta.
[36] R. Apak,et al. An optical fibre reflectance sensor for p-aminophenol determination based on tetrahydroxycalix[4]arene as sensing reagent , 2009 .
[37] Ibrahim Yilmaz,et al. Selective optical sensing of copper(II) ions based on a novel cyclobutane-substituted Schiff base ligand embedded in polymer films , 2008 .
[38] M. Karimi,et al. Solid phase extraction of copper (II) by sorption on octadecyl silica membrane disk modified with a new Schiff base and determination with atomic absorption spectrometry , 2008 .
[39] M. Soylak,et al. The determination of some heavy metals in food samples by flame atomic absorption spectrometry after their separation-preconcentration on bis salicyl aldehyde, 1,3 propan diimine (BSPDI) loaded on activated carbon. , 2008, Journal of hazardous materials.
[40] Biaolin Yin,et al. An efficient method for the synthesis of disubstituted thioureas via the reaction of N,N'-di-Boc-substituted thiourea with alkyl and aryl amines under mild conditions , 2008 .
[41] Dylan W Domaille,et al. Metals in neurobiology: probing their chemistry and biology with molecular imaging. , 2008, Chemical reviews.
[42] T. O’Halloran,et al. A place for thioether chemistry in cellular copper ion recognition and trafficking. , 2008, Nature chemical biology.
[43] D. Thiele,et al. Mechanisms for copper acquisition, distribution and regulation. , 2008, Nature chemical biology.
[44] Gang-Ding Peng,et al. Broad range pH sensor based on sol–gel entrapped indicators on fibre optic , 2008 .
[45] K. Alizadeh,et al. A calmagite immobilized agarose membrane optical sensor for selective monitoring of Cu2 , 2008 .
[46] R. Srivastava,et al. Nanoengineered Alginate Microspheres Comprising Multilayered Assemblies of Cresol Red and Polyelectrolytes for an Optical pH Sensor , 2007 .
[47] E. Yeung,et al. Mobility-based wall adsorption isotherms for comparing capillary electrophoresis with single-molecule observations. , 2007, Analytical chemistry.
[48] V. Salvadó,et al. Development of a selective optical sensor for Cr(VI) monitoring in polluted waters. , 2007, Analytica chimica acta.
[49] M. Taher,et al. Voltammetric determination of Cu(II) in natural waters and human hair at a meso-2,3-dimercaptosuccinic acid self-assembled gold electrode. , 2007, Talanta.
[50] S. Liawruangrath,et al. Greener analytical method for the determination of copper(II) in wastewater by micro flow system with optical sensor. , 2007, Talanta.
[51] Payman Hashemi,et al. Agarose film coated glass slides for preparation of pH optical sensors , 2007 .
[52] Ashutosh Kumar Singh,et al. Selective electrochemical sensor for copper (II) ion based on chelating ionophores. , 2006, Analytica chimica acta.
[53] H. Kozłowski,et al. Copper homeostasis and neurodegenerative disorders (Alzheimer's, prion, and Parkinson's diseases and amyotrophic lateral sclerosis). , 2006, Chemical reviews.
[54] P. Hashemi,et al. Preparation of a novel optical sensor for low pH values using agarose membranes as support , 2006 .
[55] G. Shen,et al. A highly selective fluorescent sensor for Cu2+ based on 2-(2′-hydroxyphenyl)benzoxazole in a poly(vinyl chloride) matrix , 2006 .
[56] Ali Benvidi,et al. Simultaneous determination of copper, lead and cadmium by cathodic adsorptive stripping voltammetry using artificial neural network , 2006 .
[57] F. Shemirani,et al. Cloud point preconcentration and flame atomic absorption spectrometry: application to the determination of manganese in milk and water samples , 2006 .
[58] G. Wibetoe,et al. Direct Analysis of Beer by ICP-AES: A Very Simple Method for the Determination of Cu, Mn and Fe , 2005 .
[59] R. Cassella,et al. Synthesis and application of a functionalized resin for flow injection/F AAS copper determination in waters. , 2005, Talanta.
[60] B. Reis,et al. A multicommuted flow system for the determination of copper, chromium, iron and lead in lubricating oils with detection by flame AAS. , 2004, Talanta.
[61] Eric R. Ziegel,et al. Statistics and Chemometrics for Analytical Chemistry , 2004, Technometrics.
[62] Carlos Moreno,et al. A very sensitive flow system for the direct determination of copper in natural waters based on spectrophotometric detection. , 2004, Talanta.
[63] J. Prohaska,et al. Intracellular copper transport in mammals. , 2004, The Journal of nutrition.
[64] T. Werner,et al. Highly selective optical sensing of copper(II) ions based on fluorescence quenching of immobilised Lucifer Yellow , 2002 .
[65] J. Aylott,et al. A real-time ratiometric method for the determination of molecular oxygen inside living cells using sol-gel-based spherical optical nanosensors with applications to rat C6 glioma. , 2001, Analytical chemistry.
[66] J. Gitlin,et al. The Role of Copper in Neurodegenerative Disease , 1999, Neurobiology of Disease.
[67] Roberta F. White,et al. Cognitive performance of children prenatally exposed to "safe" levels of methylmercury. , 1998, Environmental research.
[68] C. Masters,et al. The Amyloid Precursor Protein of Alzheimer's Disease in the Reduction of Copper(II) to Copper(I) , 1996, Science.
[69] J. Dean. Analytical Chemistry Handbook , 1995 .
[70] J. B. Kenworthy,et al. Metal Pollution in the Aquatic Environment , 1980, Springer Berlin Heidelberg.
[71] N. Seno,et al. Activation of Sepharose with epichlorohydrin and subsequent immobilization of ligand for affinity adsorbent. , 1979, Journal of biochemistry.
[72] R. Dringen,et al. Neurotoxicity of Copper. , 2017, Advances in neurobiology.
[73] K. Dev,et al. Copper mediated neurological disorder: visions into amyotrophic lateral sclerosis, Alzheimer and Menkes disease. , 2015, Journal of trace elements in medicine and biology : organ of the Society for Minerals and Trace Elements.
[74] Ying Qian,et al. Synthesis and intramolecular FRET of perylenediimide–naphthalimide dendrons , 2015 .
[75] Kyung Beom Kim,et al. An anthracene-based fluorescent sensor for sequential detection of zinc and copper ions , 2014 .
[76] Manoj Kumar,et al. A review of permissible limits of drinking water , 2012, Indian journal of occupational and environmental medicine.
[77] S. Kaler,et al. ATP7A-related copper transport diseases—emerging concepts and future trends , 2011, Nature Reviews Neurology.
[78] D. Winge,et al. Copper metallochaperones. , 2010, Annual review of biochemistry.
[79] A. Bush,et al. Copper in the brain and Alzheimer’s disease , 2009, JBIC Journal of Biological Inorganic Chemistry.
[80] I. Bertini,et al. Menkes disease , 2007, Cellular and Molecular Life Sciences.
[81] Marion Kee,et al. Analysis , 2004, Machine Translation.
[82] G. Reich,et al. Determination of Cu, Fe, Mn, and Zn in blood fractions by SEC-HPLC-ICP-AES coupling. , 1999, The Analyst.