Enhanced Sensitive Electrochemical Sensor for Simultaneous Catechol and Hydroquinone Detection by Using Ultrasmall Ternary Pt‐based Nanomaterial
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[1] T. Saleh,et al. Surface-assembled Fe-Oxide colloidal nanoparticles for high performance electrocatalytic water oxidation , 2020 .
[2] Xin Ma,et al. A hybrid of ultrathin metal-organic framework sheet and ultrasmall copper nanoparticles for detection of hydrogen peroxide with enhanced activity , 2020, Analytical and Bioanalytical Chemistry.
[3] Xiujuan Qiao,et al. Preparation and comparison of colloid based Ni50Co50(OH)2/BOX electrocatalyst for catalysis and high performance nonenzymatic glucose sensor , 2020 .
[4] Y. Tong,et al. Surfactant-Free One-Pot Synthesis of Homogeneous Tri-Metallic PtNiCu Nanoparticles with Size Control by Using Glycine. , 2020, Langmuir : the ACS journal of surfaces and colloids.
[5] Wei Zhang,et al. Low Pt-content ternary PtNiCu nanoparticles with hollow interiors and accessible surfaces as enhanced multifunctional electrocatalysts. , 2020, ACS applied materials & interfaces.
[6] Tingting Chen,et al. Development of PANI/BN-based absorbents for water remediation , 2019, Water Quality Research Journal.
[7] G. Ren,et al. Quadruply-labeled serum albumin as a biodegradable nanosensor for simultaneous fluorescence imaging of intracellular pH values, oxygen and temperature , 2019, Microchimica Acta.
[8] Yuhua Dong,et al. A high-performance non-enzymatic electrochemical hydrazine sensor based on NiCo2S4 porous sphere. , 2019, Talanta.
[9] Xiaoqing Pan,et al. Oxidation-Induced Atom Diffusion and Surface Restructuring in Faceted Ternary Pt–Cu–Ni Nanoparticles , 2019, Chemistry of Materials.
[10] T. Yue,et al. Controlled synthesis of Au@Pd core-shell nanocomposites and their application for electrochemical sensing of hydroquinone. , 2019, Talanta.
[11] P. Strasser,et al. Concave curvature facets benefit oxygen electroreduction catalysis on octahedral shaped PtNi nanocatalysts , 2019, Journal of Materials Chemistry A.
[12] Min Zhao,et al. Voltammetric aptasensor for sulfadimethoxine using a nanohybrid composed of multifunctional fullerene, reduced graphene oxide and Pt@Au nanoparticles, and based on direct electron transfer to the active site of glucose oxidase , 2018, Microchimica Acta.
[13] Bing Li,et al. High performance octahedral PtNi/C catalysts investigated from rotating disk electrode to membrane electrode assembly , 2018, Nano Research.
[14] T. Yue,et al. Preparation of one dimensional silver nanowire/nickel-cobalt layered double hydroxide and its electrocatalysis of glucose , 2018 .
[15] Shen-ming Chen,et al. Voltammetric determination of catechol and hydroquinone using nitrogen-doped multiwalled carbon nanotubes modified with nickel nanoparticles , 2018, Microchimica Acta.
[16] P. Shen,et al. Simultaneous formation of trimetallic Pt-Ni-Cu excavated rhombic dodecahedrons with enhanced catalytic performance for the methanol oxidation reaction , 2018, Nano Research.
[17] Qinglin Sheng,et al. Simultaneous voltammetric determination of hydroquinone and catechol by using a glassy carbon electrode modified with carboxy-functionalized carbon nanotubes in a chitosan matrix and decorated with gold nanoparticles , 2017, Microchimica Acta.
[18] Fatma Yilmaz,et al. Molecular Imprinting of Macromolecules for Sensor Applications , 2017, Sensors.
[19] Shouzhuo Yao,et al. Ultrasensitive and simultaneous detection of hydroquinone, catechol and resorcinol based on the electrochemical co-reduction prepared Au-Pd nanoflower/reduced graphene oxide nanocomposite , 2017 .
[20] R. Saleh,et al. Synergistic effect between ternary iron–zinc–copper mixed oxides and graphene for photocatalytic water decontamination , 2017 .
[21] Zhenzhen Yang,et al. Facile synthesis of graphene nanoplate-supported porous Pt–Cu alloys with high electrocatalytic properties for methanol oxidation , 2016 .
[22] S. Z. Bas,et al. A new electrochemical sensor based on Fe3O4 functionalized graphene oxide-gold nanoparticle composite film for simultaneous determination of catechol and hydroquinone , 2015 .
[23] Xi Li,et al. The Cu-MOF-199/single-walled carbon nanotubes modified electrode for simultaneous determination of hydroquinone and catechol with extended linear ranges and lower detection limits. , 2015, Analytica chimica acta.
[24] Zhenmeng Peng,et al. Octahedral Pt2CuNi Uniform Alloy Nanoparticle Catalyst with High Activity and Promising Stability for Oxygen Reduction Reaction , 2015 .
[25] Shuqing Feng,et al. Simultaneous determination of hydroquinone and catechol using covalent layer-by-layer self-assembly of carboxylated-MWNTs , 2014 .
[26] Andreas Seubert,et al. Determination of stability constants of strong metal–ligand complexes using anion or cation exchange chromatography and atomic spectrometry detection , 2014 .
[27] H. Yano,et al. Electrochemical quartz crystal microbalance analysis of the oxygen reduction reaction on Pt-based electrodes. Part 2: adsorption of oxygen species and ClO4(-) anions on Pt and Pt-Co alloy in HClO4 solutions. , 2014, Langmuir : the ACS journal of surfaces and colloids.
[28] Hongyan Shi,et al. Discrimination and simultaneous determination of hydroquinone and catechol by tunable polymerization of imidazolium-based ionic liquid on multi-walled carbon nanotube surfaces. , 2013, Analytica chimica acta.
[29] A. Singh,et al. Synergistic Catalysis over Bimetallic Alloy Nanoparticles , 2013 .
[30] Houyi Ma,et al. Simultaneous determination of hydroquinone and catechol based on glassy carbon electrode modified with gold-graphene nanocomposite , 2013, Microchimica Acta.
[31] Y. Chai,et al. Gold nanoparticle–graphene nanohybrid bridged 3-amino-5-mercapto-1,2,4-triazole-functionalized multiwall carbon nanotubes for the simultaneous determination of hydroquinone, catechol, resorcinol and nitrite , 2013 .
[32] Shen-Ming Chen,et al. Electrochemically synthesized Pt–MnO2 composite particles for simultaneous determination of catechol and hydroquinone , 2012 .
[33] L. Partridge,et al. Using the mitochondria-targeted ratiometric mass spectrometry probe MitoB to measure H2O2 in living Drosophila , 2012, Nature Protocols.
[34] Jun Luo,et al. Lattice Strain Distributions in Individual Dealloyed Pt-Fe Catalyst Nanoparticles. , 2012, The journal of physical chemistry letters.
[35] M. Engelhard,et al. Correlation between atomic coordination structure and enhanced electrocatalytic activity for trimetallic alloy catalysts. , 2011, Journal of the American Chemical Society.
[36] Yogeswaran Umasankar,et al. Electrocatalysis and simultaneous determination of catechol and quinol by poly(malachite green) coated multiwalled carbon nanotube film. , 2011, Analytical biochemistry.
[37] Chun-yan Liu,et al. Electrochemical detection of hydroquinone by graphene and Pt-graphene hybrid material synthesized through a microwave-assisted chemical reduction process , 2011 .
[38] M. Ghanem. Electrocatalytic activity and simultaneous determination of catechol and hydroquinone at mesoporous platinum electrode , 2007 .
[39] X. Ge,et al. Chemiluminescence of cerium(IV)–rhodamine 6G–phenolic compound system , 2006 .
[40] Adriana G Lista,et al. Determination of phenol, resorcinol and hydroquinone in air samples by synchronous fluorescence using partial least-squares (PLS). , 2006, Talanta.
[41] Qingsheng Wu,et al. Direct simultaneous determination of dihydroxybenzene isomers at C-nanotube-modified electrodes by derivative voltammetry , 2005 .
[42] P. Farmer,et al. Comparison of the mutagenic activity of the benzene metabolites, hydroquinone and para-benzoquinone in the supF forward mutation assay: a role for minor DNA adducts formed from hydroquinone in benzene mutagenicity. , 2004, Mutation research.
[43] S. Mukerjee,et al. Oxygen Reduction Kinetics in Low and Medium Temperature Acid Environment: Correlation of Water Activation and Surface Properties in Supported Pt and Pt Alloy Electrocatalysts , 2004 .
[44] Klaus Danzer,et al. Guidelines for calibration in analytical chemistry. Part 2: Multicomponent calibration (IUPAC Technical Report) , 2004 .
[45] Lloyd A. Currie,et al. Nomenclature in evaluation of analytical methods including detection and quantification capabilities1: (IUPAC Recommendations 1995) , 1999 .
[46] L. A. Currie,et al. Guidelines for calibration in analytical chemistry. Part I. Fundamentals and single component calibration (IUPAC Recommendations 1998) , 1998 .
[47] Lloyd A. Currie,et al. Detection and quantification limits: origins and historical overview , 1997 .
[48] L. A. Currie,et al. Nomenclature in evaluation of analytical methods including detection and quantification capabilities (IUPAC Recommendations 1995) , 1995 .
[49] T. Yue,et al. Rational Design of Highly Efficient One‐pot Synthesis of Ternary PtNiCo/FTO Nanocatalyst for Hydroquinone and Catechol Sensing , 2020, Electroanalysis.
[50] T. Yue,et al. Nitrogen Doped Carbon Dots Derived from Natural Seeds and Their Application for Electrochemical Sensing , 2019, Journal of The Electrochemical Society.
[51] Zonghua Wang,et al. Nickel oxide/carbon nanotube nanocomposites prepared by atomic layer deposition for electrochemical sensing of hydroquinone and catechol , 2018 .
[52] D. Radulović,et al. Determination of Lercanidipine Hydrochloride and Its Impurities in Tablets , 2005 .