전기화학적인 생체분자 검출을 위한 탄소재료 기반 거대유기분자 복합체 = Supramolecular Organic Compounds based on Carbon Materials for Electrochemical Sensing of Biomolecules

논문상세정보
' 전기화학적인 생체분자 검출을 위한 탄소재료 기반 거대유기분자 복합체 = Supramolecular Organic Compounds based on Carbon Materials for Electrochemical Sensing of Biomolecules' 의 주제별 논문영향력
논문영향력 선정 방법
논문영향력 요약
주제
  • Carbon nanotube
  • Electrochemical biosensor
  • Graphite
  • Graphite oxide
  • biomolecules
  • carbon nanofiber
  • plasma
  • reduced graphite oxide
동일주제 총논문수 논문피인용 총횟수 주제별 논문영향력의 평균
409 0

0.0%

' 전기화학적인 생체분자 검출을 위한 탄소재료 기반 거대유기분자 복합체 = Supramolecular Organic Compounds based on Carbon Materials for Electrochemical Sensing of Biomolecules' 의 참고문헌

  • β-Cyclodextrin-Graphite Oxide-Carbon Nanotube Composite for Enhanced Electrochemical Supramolecular Recognition
    C. 119 (18671-18677 [2015]
  • β-CD-GO-CNT composite for enhanced electrochemical supramolecular recognition
    C 119 ( [2015]
  • surface modification of sonochemically prepared magnetite nanoparticles via chemical grafting of poly ( vinyl acetate )
    6 ( [2016]
  • [7] B. Uslu, S. Ozkan, Electroanalytical Application of Carbon Based Electrodes to the Pharmaceuticals, Anal. Lett. 40 (5) (2007) 817-853.
  • [5] H. Aysun, An overview of ascorbic acid biochemistry, J. Fac. Pharm. 38 (2009) 233– 255.
  • [3] J. Szejtli, Introduction and general overview of cyclodextrin chemistry, Chem. Rev. 98 (1999) 1743–1754.
  • [3] F. Faridbod, V.K. Gupta, H.A. Zamani, Electrochemical Sensors and Biosensors, Int. J. Electrochem. 2011 (2011) 1-2.
  • [2] A. Hulanicki, S. Glab, F. Ingman, Chemical Sensors: Definitions and Classification, Pure Appl. Chem. 63 (9) (1991) 1247-1250.
  • [1] H. Ma, Cholesterol and Human Health, Nature and Science 4 (2004) 17-21.
  • [1] C. Lefrou, P. Fabry, J.C. Poignet, Electrochemistry: The Basics, with Examples, 2012.
  • [18] K. M. Hassan, Electrochemical sensing and simultaneous determination of ascorbic acid, dopamine and uric acid at nickel nanoparticles/poly(1,2‑diaminoanthraquinone) modified electrode, J. Iranian Chemical Society 15 (2018) 1007-1014.
  • [13] A. Walcarius, Mesoporous Materials-Based Electrochemical Sensors, Electroanalysis 27 (2015) 1-39.
  • [11] Z. Navrátilová, P. Kula, Clay Modified Electrodes: Present Applications and Prospects, Electroanalysis 15 (10) (2003) 837-846.
  • Well-defined core-shell Fe3O4 @ polypyrrole composite microspheres with tunable shell thickness : synthesis and their superior microwave absorption performance in the Ku band
    55 ( [2015]
  • Watsonia meriana flower like Fe3O4/reduced graphene oxide nanocomposite for the highly sensitive and selective electrochemical sensing of dopamine
    688 ( [2016]
  • Water at hydrophobic surfaces : weak hydrogen bonding and strong orientation effects
    292 ( [2001]
  • Voltammetric sensor for total cholesterol determination
    10 ( [2014]
  • Ultrafine Pt-Ni bimetallic nanoparticles anchored on reduced graphene oxide nanocomposites for boosting electrochemical detection of dopamine in biological samples
    42 ( [2018]
  • Three dimensional Graphene oxide-Carbon nanotubes and Graphene-Carbon Nanotubes Hybrids
    8 ( [2013]
  • Thermally reduced graphite oxide-titanium dioxide composites for supercapacitors
    706 ( [2018]
  • Thermally reduced graphene oxide : synthesis , studies and characterization
    53 ( 17 ) ( [2018]
  • The simultaneous electrochemical detection of ascorbic acid , dopamine , and uric acid using graphene/size-selected Pt nanocomposites
    26 ( [2011]
  • The enhanced photo-electrochemical detection of uric acid on Au nanoparticles modified glassy carbon electrode
    12 ( [2017]
  • Synthesis of zinc oxide nanoparticles on graphene-carbon nanotube hybrid for glucose biosensor application
    62 ( [2014]
  • Synthesis of electrically conductive and super paramagnetic monodispersed iron oxide-conjugated polymer composite nanoparticles by in situ chemical oxidative polymerization
    335 ( [2009]
  • Synthesis and systematic characterization of functionalized graphene sheets generated by thermal exfoliation at low temperature
    43 ( [2010]
  • Synthesis and characterization of NiO nanoparticles by thermal decomposition of nickel linoleate and their optical properties
    68 ( [2012]
  • Synergistic electrocatalytic effect of graphene/nickel hydroxide composite for the simultaneous electrochemical determination of ascorbicacid , dopamine and uric acid
    133 ( [2014]
  • Surface oxidation of carbon nanofibres
    8 ( [2002]
  • Surface modification of conventional polymers by depositing plasma polymers of trimethylsilane and of trimethylsilane + O2 : I. Static wetting properties ,
    211 ( [1999]
  • Surface modification by air-plasma treatment and its effect on the tribological behavior of hybrid fabric polyphenylene sulfide composites
    51 ( [2012]
  • Study to explore the mechanism to form inclusion complexes of β-cyclodextrin with vitamin molecules
    6 ( [2016]
  • Study on the intermolecular complexation behavior between p-sulfonatocalix [ 4 ] arene with L-tyrosine .
    72 ( [2012]
  • Spectrofluorimetric study on the inclusion behavior of p-sulfonatedCalix [ 4 ] arene withCetyltrimethylammonium bromide and analytical application .
    126 ( [2007]
  • Some Physical Properties of GlassyCarbon
    193 ( 4812 ) ( [1962]
  • Simultaneous voltammetric determination of dopamine and uric acid usingCarbon-encapsulated hollow Fe3O4 nanoparticles anchored to an electrode modified with nanosheets of reduced graphene oxide
    184 ( [2017]
  • Simultaneous electrochemical detection of ascorbic acid , dopamine and uric acid based on nitrogen doped porousCarbon nanopolyhedra ,
    B 1 ( [2013]
  • Simultaneous determination of ascorbic acid , dopamine and uric acid withChitosan-graphene modified electrode
    22 ( [2010]
  • Simultaneous determination of ascorbic acid , dopamine and uric acid using high-performance screen-printed graphene electrode
    34 ( [2012]
  • Simultaneous determination of ascorbic acid , dopamine and uric acid based on tryptophan functionalized graphene
    823 ( [2014]
  • Simultaneous determination of ascorbic acid , dopamine and uric acid at nitrogen-dopedCarbon nanofiber modified electrode ,
    5 ( [2015]
  • Simultaneous determination of ascorbic acid , dopamine , uric acid and tryptophan on gold nanoparticles/overoxidized-polyimidazoleComposite modified glassyCarbon electrode
    741 ( [2012]
  • Simultaneous determination of ascorbic acid , dopamine , and uric acid based on double-walledCarbon nanotubes/choline-modified electrode
    5 ( [2013]
  • Simultaneous detection of dopamine , uric acid , and ascorbic acid using SnO2 nanoparticles/multi-walledCarbon nanotubes/carbon paste electrode
    4 ( [2012]
  • Self-assembly synthesis of a hierarchical structure using hollow nitrogen-dopedCarbon spheres as spacers to separate the reduced graphene oxide for simultaneous electrochemical determination of ascorbic acid , dopamine and uric acid
    5 ( [2013]
  • Selective determination of uric acid by using a β-Cyclodextrin modified electrode
    13 ( [2001]
  • S.C. Avendono , M. R-Romo and G. Aangeles , Guest-HostComplex formed between Ascorbic acid and βCD immobilized on the surface of an electrode
    19 ( [2014]
  • Recognition of aromatic amino acids and proteins with p-sulfonatocalix [ 4 ] arene – A luminescence and theoretical approach
    25 ( [2012]
  • Recent trends in the design ofChemical sensors based on graphene-metal oxide nanocomposites for the analysis of toxic species and biomolecules
    https : //doi.org/10.1016/j.trac.2019.115660 . [2019]
  • Preparation and properties of dopamine reduced graphene oxide and itsComposites of epoxy
    131 ( 2 ) ( [2014]
  • Porous flower-like NiO @ grapheneComposites with superior microwave absorption properties ,
    5 ( [2017]
  • Polarographic method for rapid micro determination ofCholesterol withCholesterol esterase andCholesterol oxidase
    22 ( 3 ) ( [1976]
  • Physicochemical properties of β -cyclodextrin solutions and precipitates prepared from injectable vehicles ,
    13 ( [2018]
  • Oxygen vacancy doping of hematite analyzed by electrical conductivity and thermoelectric power measurements
    1 ( [2017]
  • Novel graphene flowers modified carbon fibers for simultaneous determination of ascorbic acid , dopamine and uric acid
    53 ( [2014]
  • Novel cavity design using calix [ n ] arene skeletons : towards molecular recognition and metal binding .
    97 ( [1997]
  • Nitric acid oxidation of electrospun carbon nanofibers as supercapacitors electrodes
    87 ( 19 ) ( [2016]
  • Nitric acid oxidation of electrospun carbon nanofibers as supercapacitors electrodes
    0 ( 00 ) ( 2016 ) 1-12 .
  • Nickel-cobalt double hydroxide nanosheets wrapped amorphous Ni ( OH ) 2 nanoboxes : Development of dopamine sensor with enhanced electrochemical properties
    41 ( [2017]
  • N. B. Muhamad , N. M. Saleh , The electrochemical behavior of Zinc oxide/reduced graphene oxide composite electrode in dopamine
    22 ( [2018]
  • Morphology-dependent nanocatalysts : Rod-shaped oxides
    43 ( [2014]
  • Molecular Inclusion Complex of Curcumin-β-Cyclodextrin Nanoparticleto Enhance Curcumin Skin Permeability from Hydrophilic Matrix Gel
    14 ( [2013]
  • Modified Electrodes for Electrochemical Sensors
    3 ( 4-5 ) ( [1991]
  • Modification of β-cyclodextrin-carbon nanotube-thermally reduced graphite oxide by using ambient plasma for electrochemical sensing of ascorbic acid
    730 ( [2019]
  • Metal oxide nanoparticles/multi-walled carbon nanotube nanocomposite modified electrode for the detection of dopamine : Comparative electrochemical study
    6 [2015]
  • Low oxidation state and enhanced magnetic properties induced by raspberry shaped nanostructures of iron oxide
    C 119 ( [2015]
  • Layer-by-layer assembled multilayer films of reduced graphene oxide/gold nanoparticles for the electrochemical detection of dopamine
    672 ( [2012]
  • Iron based nanomaterials/graphene composites for advanced electrochemical sensors
    7 ( [2017]
  • Introduction to Fluorescence Sensing . Biomedical Sciences XXVI 590
    [2009]
  • Introduction and general overview of cyclodextrin chemistry
    98 ( [1999]
  • Improved host–guest electrochemical sensing of dopamine in the presence of ascorbic and uric acids in a β -cyclodextrin/Nafion®/polymer nanocomposite
    6 ( 15 ) ( [2014]
  • Improved dispersion of graphite derivatives by solution plasma
    53 ( [2017]
  • Impact of water quality parameters on the sorption of U ( VI ) onto hematite ,
    103 ( [2012]
  • Highly sensitive biosensor based on the synergistic effect of Fe3O4-Co3O4 bimetallic oxides and grapheme
    6 ( [2016]
  • Highly Ordered mesoporous Fe3O4 @ carbon embedded composite : high catalytic activity , wide pH range and stability for heterogeneous electro-fenton
    28 ( [2016]
  • Hematite-thermally reduced graphite oxide composite for electrochemical sensing of dopamine
    723 ( [2019]
  • Hematite nanoparticles-modified electrode based electrochemical sensing platform for dopamine
    Article ( [2014]
  • Glassy Carbon as Electrode Material in Electro-Analytical Chemistry
    119 ( 1 ) ( [1980]
  • Gas sensor based on nanoporous hematite nanoparticles : Effect of synthesis pathways on morphology and gas sensing properties
    12 ( [2012]
  • Functionalization of thermally reduced graphite oxide and carbon nanotubes by p-sulfonatocalix [ 4 ] arene and supramolecular recognition of tyrosine
    714 ( [2019]
  • Fluorescent detection of cholesterol using β-cyclodextrin functionalized graphene
    48 ( [2012]
  • Fluorescent cholesterol sensing using enzyme-modified CdSe/ZnS quantum dots
    14 ( [2012]
  • Fe3O4 magnetic nanoparticles/reduced graphene oxide nanosheets as a novel electrochemical and bioeletrochemical sensing platform
    49 ( [2013]
  • Facile and controlled growth of SWCNT on well-dispersed Ni-SBA-15 for an efficient electro-catalytic oxidation of ascorbic acid , dopamine and uric acid
    372 ( [2013]
  • Evidence of Graphitic AB Stacking Order of Graphite Oxides
    130 ( [2008]
  • Electropolymerization of a conductive β-Cyclodextrin polymer on reduced graphene oxide modified screen-printed electrode for simultaneous determination of ascorbic acid , dopamine and uric acid , J. Electro
    782 ( [2016]
  • Electrodeposition synthesis of reduced graphene oxide-carbon nanotube hybrids on indium tin oxide electrode for simultaneous electrochemical detection of ascorbic acid , dopamine and uric acid
    5 ( [2015]
  • Electrochemistry and voltammetric determination of L-tryptophan and L-tyrosine using a glassy carbon electrode modified with a Nafion/TiO2-graphene composite film
    173 ( [2011]
  • Electrochemical tyrosine sensor based on a glassy carbon electrode modified with a nanohybrid made from graphene oxide and multiwalled carbon nanotubes , J. Michrochim
    180 ( [2013]
  • Electrochemical tyrosine sensor based on a glassy carbon electrode modified with a nanohybrid made from graphene oxide and multiwalled carbon nanotubes
    180 ( [2013]
  • Electrochemical supercapacitive performance of hematite α-Fe2O3 thin films prepared by spray pyrolysis from non-aqueous medium ,
    616 ( [2016]
  • Electrochemical properties of modified highly ordered pyrolytic graphite by using ambient plasma
    644 ( [2016]
  • Electrochemical determination of L-tryptophan , L-tyrosine and L-cysteine using electrospun carbon nanofibers modified electrode
  • Electrochemical determination of L-Tryptophan , L-Tyrosine and L-Cysteine using electrospun carbon nanofibers modified electrode
    80 ( [2010]
  • Electrochemical behavior of carbon paste electrode modified with carbon nanofibers : Application to detection of bisphenol A ,
    6 ( [2016]
  • Electrochemical and spectral study of cyclodextrins interaction with pharmaceutical substances
    61 ( [2013]
  • Electrochemical and spectral study of cyclodextrin interactions with some pharmaceuticals substance
    61 ( [2013]
  • Electrochemical Sensors for Clinic Analysis
    8 ( 4 ) ( [2008]
  • Electrochemical Sensors : A Powerful Tool in Analytical Chemistry
    14 ( 2 ) ( [2003]
  • Electrochemical Performance of α-Cyclodextrin and Carbon Nanotube Composites in an Aqueous Electrolyte
    62 ( [2012]
  • Electrochemical Oxidation of Cholesterol Catalyzed by Cholesterol Oxidase with Use of an Artificial Electron Mediator
    69 ( 13 ) [1997]
  • Electrochemical Biosensors : Recommended Definitions and Classification
    16 ( 1-2 ) ( [2001]
  • Electroanalytical method for determination of shikonin based on the enhancement effect of cyclodextrin functionalized carbon nanotubes
    26 ( [2015]
  • Effects of plasma etching on surface modification and gas permeability of bisphenol-a polycarbonate films ,
    B46 ( [2007]
  • Effect of glow discharge air plasma treatment on wettability of synthetic polymers
    2 ( [2012]
  • Effect of atmospheric plasma on the surface area of powered whey protein isolate
    [2017]
  • Edge-oriented graphene on carbon nanofiber for high frequency supercapacitor
    10 ( 1 ) ( [2017]
  • Dopamine synthesis in alcohol drinking-prone and-resistant mouse strains
    58 ( [2017]
  • Determination of uric acid at electrochemical activated glassy carbon electrode
    Electrolysis 13 ( [2001]
  • Determination of the real surface area of a screen printed electrode by chronocoulometry
    7 ( [2012]
  • Determination of dopamine by dual doped graphene-Fe2O3 in presence of ascorbic acid
    162 (B363– B369 [2015]
  • Cyclodextrin-graphite oxide-carbon nanotube composites for electrochemical supramolecular recognition
    232 (7-12 [2017]
  • Cyclodextrin-carbon nanotube composites for fluorescent detection of cholesterol ,
    222-226 [2017]
  • Cyclodextrin-Graphite oxide-carbon Nano tube for electrochemical supramolecular recognition
    232 ( [2017]
  • Cyclodextrin Functionalized Graphene Nanosheets with High Supramolecular Recognition- 102 - Capability : Synthesis and Host-Guest Inclusion for Enhanced Electrochemical Performance
    4 ( 4010 ) , 4001-4010
  • Controllable synthesis of RGO/FexOy nano composites as high-performance anode materials for lithium ion batteries
    A 2 ( [2014]
  • Conducting polyaniline graphene oxide fibrous nanocomposites : preparation , characterization and simultaneous electrochemical detection of ascorbic acid , dopamine and uric acid
    3 ( [2013]
  • Composite Electrodes for Electroanalysis : Principles and Applications
    2 ( 7 ) ( [1990]
  • Comparison of interfacial behavior and silver extraction kinetics with various types calix [ 4 ] arene derivatives at heterogeneous liquid-liquid interfaces ,
    1558 (107-114 [2018]
  • Comparison of functionalization of multiwalled carbon nanotubes treated by oil olive and nitric acid and their characterization
    36 ( [2013]
  • Comparison of Binding Affinities of Water-Soluble calixarenes with the Organophosphorus Nerve Agent Soman ( GD ) and Commonly-Used Nerve Agent Simulants
    23 ( [2018]
  • Chemically Modified Electrodes : Recommended Terminology and Definitions
    57 ( 6 ) ( [1997]
  • Chemical methods for the production of graphenes
    4 ( [2009]
  • Carbon nanofibre-based functional nanomaterials for sensor applications
    9 ( [2019]
  • Carbon dot-hemoglobin complex based biosensor for cholesterol detection
    1 ( [2013]
  • Calixarine-functionalized graphene oxide composites fixed on glassy carbon electrodes for electrochemical detection
    6 ( [2016]
  • Calix [ 4,6,8 ] arenesulfonates functionalized Reduced Graphene oxide with high supramolecular recognition capability : Fabrication and application for enhanced host-guest electrochemical recognition
    5 ( [2013]
  • C. W. Bielawski and R. S. Ruoff
    39 ( [2010]
  • Biopharmaceutical application of calixarines
    14 ( [2004]
  • Biological significance of Ascorbic acid ( Vitamin C ) in human health -A review
    3 ( [2004]
  • Analysis of chronocaulometric data and determination of surface concentration
    56 ( [1984]
  • An improved HPLC method to purify erythrocyte cholesterol for estimation of in vivo cholesterol synthesis using the deuterium method
    45 ( 4 ) ( [1994]
  • Acid functionalization of carbon nanofibres
    46 ( [2010]
  • A. N. Lazar , A. W. Coleman , Biopharmaceutical application of calixarines
    14 ( [2004]
  • A selective voltammetric method for uric acid detection at β-Cyclodextrin modified electrode incorporating carbon nanotubes ,
    127 ( [2002]
  • A selective voltammetric method for uric acid and dopamine detection using clay modified electrodes
    69 ( [1997]
  • A new sensor for simultaneous determination of tyrosine and dopamine using Iron ( III ) doped zeolite modified carbon paste electrode
    28 ) 1967-1972
  • A magnetic field assisted selfassembly strategy towards strongly coupled Fe3O4 nanocrystal/rGO paper for high-performance lithium ion batteries
    A 2 ( [2014]
  • A highly selective amperometric sensor for ascorbic acid based on mesopore-rich active carbon-modified pyrolytic graphite electrode
    55 ( [2010]
  • A glassy carbon electrode modified with a nanocomposite consisting of MoS2 and reduced graphene oxide for electrochemical simultaneous determination of ascorbic acid , dopamine , and uric acid
    183 ( [2016]
  • A Graphene Platform for Sensing Biomolecules
    48 ) 2009 , 4785−4787