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    전도성 고분자를 이용한 바이오센서 = Conducting Polymer-Based Biosensors

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    https://www.riss.kr/link?id=A103819615

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    다국어 초록 (Multilingual Abstract) kakao i 다국어 번역

    A biosensor is an analytical device which converts a biological response into an electrical signal. Recently, conducting polymers have received great attention in the development of biosensors. Conducting polymer is emerging materials with potential for biosensors because of their chemical sensitivity and biocompatibility. The conducting polymers are known to endow with abundance special features, which allow them to act as superior materials for immobilization of biomolecules and rapid response time for the fabrication of efficient biosensors. Conducting polymer, such as films,nanowires, as sensing platforms for application are also summarized in electrochemical and field effect transistor (FET)biosensor.
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    A biosensor is an analytical device which converts a biological response into an electrical signal. Recently, conducting polymers have received great attention in the development of biosensors. Conducting polymer is emerging materials with potential f...

    A biosensor is an analytical device which converts a biological response into an electrical signal. Recently, conducting polymers have received great attention in the development of biosensors. Conducting polymer is emerging materials with potential for biosensors because of their chemical sensitivity and biocompatibility. The conducting polymers are known to endow with abundance special features, which allow them to act as superior materials for immobilization of biomolecules and rapid response time for the fabrication of efficient biosensors. Conducting polymer, such as films,nanowires, as sensing platforms for application are also summarized in electrochemical and field effect transistor (FET)biosensor.

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    참고문헌 (Reference)

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    2 J. Haccoun, "The development of reagentless lactate biosensor based on a novel conducting polymer" 68 : 218-226, 2006

    3 M. A. Rahman, "The biosensor based on the pyruvate oxidase modified conducting polymer for phosphate ions determinations" 21 : 1116-1124, 2006

    4 A. G. MacDiarmid, "Synthetic Metals: A novel role for organic polymers" 40 : 2581-2590, 2001

    5 H. Shirakawa, "Synthesis of electrically conducting organic polymers: Halogen derivatives of polyacetylene, (CH)x" 578-580, 1977

    6 J. S Wilson, "Sensor Technology handbook, Chap. 6 Biosensors" Elsevier Inc 2005

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    8 A. J. Heeger, "Semiconducting and metallic polymers: The fourth generation of polymeric materials" 40 : 2591-2611, 2001

    9 T. Ahuja, "Potentiometric urea biosensor based on BSA embedded surface modified polypyrrole film" 134 : 140-145, 2008

    10 J. P. Lellouche, "Polydipyrrole- and polydicarbazole-nanorods as new nanosized supports for DNA hybridization" ROYAL SOC CHEMISTRY 59 : 4357-4359, 2005

    1 S. Sadki, "The mechanisms of pyrrole electropolymerization" 29 : 283-293, 2000

    2 J. Haccoun, "The development of reagentless lactate biosensor based on a novel conducting polymer" 68 : 218-226, 2006

    3 M. A. Rahman, "The biosensor based on the pyruvate oxidase modified conducting polymer for phosphate ions determinations" 21 : 1116-1124, 2006

    4 A. G. MacDiarmid, "Synthetic Metals: A novel role for organic polymers" 40 : 2581-2590, 2001

    5 H. Shirakawa, "Synthesis of electrically conducting organic polymers: Halogen derivatives of polyacetylene, (CH)x" 578-580, 1977

    6 J. S Wilson, "Sensor Technology handbook, Chap. 6 Biosensors" Elsevier Inc 2005

    7 H. Dong, "Sensitive amperometric immunosensing using Polypyrrolepropylic acid films for biomolecule immobilization" 78 : 7424-7437, 2006

    8 A. J. Heeger, "Semiconducting and metallic polymers: The fourth generation of polymeric materials" 40 : 2591-2611, 2001

    9 T. Ahuja, "Potentiometric urea biosensor based on BSA embedded surface modified polypyrrole film" 134 : 140-145, 2008

    10 J. P. Lellouche, "Polydipyrrole- and polydicarbazole-nanorods as new nanosized supports for DNA hybridization" ROYAL SOC CHEMISTRY 59 : 4357-4359, 2005

    11 Z. M. Tahir, "Polyaniline synthesis and its biosensor application" 20 : 1690-1695, 2005

    12 A. Kros, "Poly(3,4-ethylenedioxythiophene)-based glucose biosensors" 13 : 1555-1557, 2001

    13 A. Arslan, "Novel conducting polymer electrolyte biosensor based on poly(1-vinyl imidazole) and poly(acrylic acid) networks" 22 : 2912-2915, 2006

    14 M. G. Kim, "Nanomaterial-based biosensor technology" 9 : 1-5, 2006

    15 B. T. T. Nguyen, "Membrane-based electrochemical nanobiosensor for the detection of Virus" 81 : 7226-7234, 2009

    16 J. Liu, "Glucose sensor based on organic thin film transistor using glucose oxidase and conducting polymer" 135 : 195-199, 2008

    17 S. B. Adeloju, "Fabrication of ultra-thin polypyrrole– glucose oxidase film from supporting electrolyte-free monomer solution for potentiometric biosensing of glucose" 16 : 133-139, 2001

    18 X. L. Luo, "Enhancement of a conducting polymer-based biosensor using carbon nanotubedoped polyaniline" 575 : 39-44, 2006

    19 A. Ramanavicius, "Electrochemical sensors based on conducting polymer-polypyrrole" 51 : 6025-6037, 2006

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    21 Y. T. Kong, "Direct electrochemistry of horseradish peroxidase bonded on a conducting polymer modified glassy carbon electrode" 19 : 227-232, 2003

    22 A. A. Abdelwahab, "Direct Electrochemistry of Cholesterol Oxidase Immobilized on a Conducting Polymer: Application for a Cholesterol Biosensor" 22 : 21-25, 2010

    23 J. M. Song, "Detection of cytochrome C in a single cell using an optical nanobiosensor" 76 : 2591-2594, 2004

    24 J. K. Shin, "Detection of DNA and protein molecules using an FET-type biosensor with gold as a gate metal" WILEY-V C H VERLAG GMBH 16 (16): 1912-1918, 2004

    25 Y. Z. Fu, "Coupling of a reagentless electrochemical DNA biosensor with conducting polymer film and nanocomposite as matrices for the detection of the HIV DNA sequences" 39 : 467-482, 2006

    26 C. García-Aljaro, "Conducting polymer nanowire-based chemiresistive biosensor for the detection of bacterial spores" 25 : 2309-2312, 2010

    27 C. M. Hangarter, "Conducting polymer nanowire for chemiresistive and FET-based bio/ chemical sensors" 20 : 3131-3140, 2010

    28 P. N. Bartlett, "Conducting polymer gas sensors. 2. Response of polypyrrole to methanol vapor" 19 : 141-150, 1989

    29 C. M. Braguglia, "Biosensors: An outline of general principles and application" 12 : 183-190, 1998

    30 S. Cosnier, "Biomolecule immobilization on electrode surfaces by entrapment or attachment to electrochemically polymerized films" 14 : 443-456, 1999

    31 X. L. Luo, "Application of nanoparticles in electrochemical sensors and biosensors" 18 : 319-326, 2006

    32 M. Gerard, "Application of conducting polymers to biosensors" 17 : 345-359, 2002

    33 X. Yu, "An impedance array biosensor for detection of multiple antibody-antigen interactions" 131 : 745-750, 2006

    34 E. A. Songa, "Amperometric nanobiosensor for quantitative determination of glyphosate and glufosinate residues in corn samples" 81 : 123-139, 2009

    35 F. L. Qu, "Amperometric biosensor for choline based on layer-by-layer assembled functionalized carbon nanotube and polyaniline multilayer film" 59 : 108-114, 2005

    36 M. El Kaoutit, "A simple conducting polymer-based biosensor for the detection of atrazine" 37 : 1671-1681, 2004

    37 G. Cheng, "A sensitive DNA electrochemical biosensor based on magnetite with a glassy carbon electrode modified by muti-walled carbon nanotubes in polypyrrole" 533 : 11-16, 2005

    38 O. S. Kwon, "A high-performance VEGF aptamer functionalized polypyrrole nanotube biosensor" ELSEVIER SCI LTD 31 : 4740-4747, 201006

    39 J. C. Chiang, "'Polyaniline’: Protonic acid doping of the emeraldine form to the metallic regime" 13 : 193-205, 1986

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    학술지 이력

    학술지 이력
    연월일 이력구분 이력상세 등재구분
    2023 평가 해외DB학술지평가 신청대상 (해외등재 학술지 평가)
    2020-01-01 등재 등재학술지 유지 (해외등재 학술지 평가) KCI등재
    2017-01-01 등재 등재학술지 유지 (계속평가) KCI등재
    2013-01-01 등재 등재 1차 FAIL (등재유지) KCI등재
    2010-01-01 등재 등재학술지 유지 (등재유지) KCI등재
    2007-01-01 등재 등재학술지 선정 (등재후보2차) KCI등재
    2006-01-01 등재 등재후보 1차 PASS (등재후보1차) KCI등재후보
    2005-03-28 학회명변경 한글명 : 생체재료학회 -> 한국생체재료학회
    영문명 : 미등록 -> The Korean Society For Biomaterials
    KCI등재후보
    2005-03-28 학술지등록 한글명 : 생체재료학회지
    외국어명 : Biomaterials Research
    KCI등재후보
    2004-07-01 등재 등재후보학술지 선정 (신규평가) KCI등재후보
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    학술지 인용정보

    학술지 인용정보
    기준연도 WOS-KCI 통합IF(2년) KCIF(2년) KCIF(3년)
    2016 0.32 0.32 0.3
    KCIF(4년) KCIF(5년) 중심성지수(3년) 즉시성지수
    0.26 0.23 0.511 0.11
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