• 제목/요약/키워드: electrochemical polymerization

검색결과 112건 처리시간 0.025초

Electrochemical Polymerization of Pyrrole from Aqueous Solutions : 2. Growth Kinetics of Polypyrrole p-toluenesulfonate Film

  • Eui Hwan Song;Woon-Kie Paik;Jung-Kyoon Chon
    • Bulletin of the Korean Chemical Society
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    • 제11권1호
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    • pp.41-44
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    • 1990
  • The rates of electropolymerization of pyrrole from aqueous solutions containing p-toluenesulfonic acid were studied as functions of the concentration of the surfactant anions and of temperature for the polymerization on the electrode surface immersed in the solution and also for the polymerization along the solution surface. In the case of the solution-surface polymerization, the polymerization rate showed maximum as the concentration of the p-toluenesulfonic acid changed at a fixed temsperature or as the temperature was varied at a fixed concentration. The decrease of the polymerization rate with increasing concentration or with rising temperature beyond the values at the maxima is interpreted as resulting from micelle formation.

Recent Advances in Electrochemical Studies of π-Conjugated Polymers

  • Park, Su-Moon;Lee, Hyo-Joong
    • Bulletin of the Korean Chemical Society
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    • 제26권5호
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    • pp.697-706
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    • 2005
  • We review the evolution of electrochemical studies of conducting polymers into the current state-of-the-art based primarily on our work. While conventional electrochemical experiments sufficed for the needs in the phase of studies of both electrochemical synthesis and characterization of conducting polymers, developments of various new experimental techniques have led to their introduction to this field for more refined information. As a result, the conventional electrochemical, spectroelectrochemical, electrochemical quartz crystal microbalance, impedance, and morphological as well as electrical characterization studies all made important contributions to a better understanding of the polymerization mechanisms and the conductive properties of these classes of polymers. From this review, we hereby expect that the electrochemical techniques will continue to play important roles in bringing this field to the practical applications such as nanoscale electronic devices.

템플레이트의 국소 위치에 형성된 전도성 고분자 미세구조물의 전기화학 합성 (Electrochemical Template Synthesis of Conducting Polymer Microstructures at Addressed Positions)

  • 이승현;서수정;윤금희;손용근
    • 전기화학회지
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    • 제7권2호
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    • pp.100-107
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    • 2004
  • 다공성 멤브레인 필터를 템플레이트로 이용하여 전도성 고분자를 중합하면 템플레이트의 형태대로 나노 또는 마이크로 사이즈의 전도성 고분자 구조물을 얻을 수 있다. 본 연구에서는 전기화학 중합법을 템플레이트 합성 과정에 이용하여 전극에 고착된 전도성 고분자 미세 구조물을 얻었다. 이 전기화학 템플레이트 합성 방법에서의 관건은 플라스틱 템플레이트를 ITO 또는 금속 전극위에 부착시키는 일이다, 이 때 전극은 전기화학 특성을 보지하여야 한다 이를 위하여 PEDiTT(poly-3,4-ethylenedithiathiophene) 용액과 PVA (polyvinyl alcohol) 용액을 블랜딩히여 얻은 복합체(composite)를 접착제로 이용하여 다공성 멤브레인 필터를 전극에 부착시켜 템플레이트 전극을 제작하였다. 이 전극을 피롤농도가 0.5M인 중합용액에 넣은 후 전해반응으로 템플레이트의 기공 안으로 폴리피롤이 합성되도록 하였다. 폴리피를 형성여부를 확인하기 위하여 템플레이트의 제거 전과 후의 전극 모습을 SEM이미지로 얻어서 확인하였다 또한 순환전압전류댑으로 전류 곡선을 얻어 확인하였다. 비교적 면적이 큰 작업 전극과 매우 작은 미소전극을 상대전극으로 구성한 전해 중합계를 이용하여 큰 작업 전극의 국소 부분에만 전도성 고분자의 전해중합을 시도하였다. 이를 위하여 마이크로 크기의 전극을 상대전극(Counter Electrode)으로, 그리고 템플레이트가 부착된 전극을 작업 전극(Working Electrode)으로 하는 2전극계를 구성하여 이용하였다. 이 전해계를 이용하여 얻은 미세구조물은 템플레이트의 동공 크기와 같은 크기로 성장하였고 형태는 튜브나 막대기 형태를 보였다. 특히 상대전극의 위치를 조정하여 원하는 위치에 튜브형태의 미세구조물을 합성하였다. 최종 합성조건으로는 $250{\mu}m$ 전극은 인가전위 4V로 100초간 중합시간, 그리고 $10{\mu}m$전극의 경우는 인가 전위 6V에 시간은 30초 동안 중합할 때 고분자가 멤브레인 동공 밖으로 넘쳐나지 않는 만큼 성장함을 알았다.

Preparation and Electrochemical Characteristics of CNFs/DAAQ Electrode for Energy Storage

  • Kim Hong-Il;Kim Han-Joo;Choi Weon-Kyung;Osaka Testuya;Park Soo-Gil
    • KIEE International Transactions on Electrophysics and Applications
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    • 제5C권4호
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    • pp.171-175
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    • 2005
  • A new type of supercapacitor was constructed by using carbon nanofibers (CNFs) and DAAQ (l,5-diaminoanthraquinone) oligomer. DAAQ was deposited on the carbon nanofibers by chemical polymerization with ammonium peroxodisulfate (($NH_4)_2S_2O_8$) as oxidant in the 0.1 M $H_2SO_4$. Polymerization reaction was carried out with constant sonication. From the analysis, it is clear that surface of carbon nanofibers was quite uniformly coated with DAAQ. The performance characteristics of the supercapacitors have been evaluated using Cyclic Voltammetry. CNFs/DAAQ based composite electrode showed relatively good electrochemical behaviors in acidic electrolyte system. CNFs/DAAQ composite electrode showed relatively good capacitance (7 Ah/kg) compared to conventional capacitors in the range of $-0.4\~0.4$.

Fabrication of enzymatic biosensor based on the poly(3-thiophenecarboxylic acid-co-thiophene) polymer as electron-transfer materials

  • Kim, Soo-Yeoun;Jo, Hyeon-Jin;Choi, Seong-Ho
    • 한국응용과학기술학회지
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    • 제36권1호
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    • pp.269-278
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    • 2019
  • We fabricated glucose oxidase (GOx)-modified biosensor for detection of glucose by physical immobilization of GOx after electrochemical polymerization of the conductive mixture monomers of the 3-thiophenecarboxylic acid (TCA) and thiophene (Th) onto ITO electrode in this study. We confirmed the successfully fabrication of GOx-modified biosensor via FT-IR spectroscopy, SEM, contact angle, and cyclic voltammetry. The fabricated biosensor has the detection limit of $0.1{\mu}M$, the linearity of 0.001-27 mM, and sensitivity of $38.75mAM^{-1}cm^{-2}$, respectively. The fabricated biosensor exhibits high interference effects to dopamine, ascorbic acid, and L-cysteine, respectively. From these results, the fabricated GOx-modified biosensor with long linearity and high sensitivity could be used as glucose sensor in human blood sample.

리튬이온폴리머전지용 가교형 겔폴리머전해질의 중합조건 최적화 연구 (Optimization Study on Polymerization of Crosslink-type Gel Polymer Electrolyte for Lithium-ion Polymer Battery)

  • 김현수;문성인;김상필
    • 한국전기전자재료학회논문지
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    • 제18권1호
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    • pp.68-74
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    • 2005
  • In this work, polymerization conditions of the gel polymer electrolyte (GPE) were studied to obtain better electrochemical performances in a lithium-ion polymer battery. When the polymerization temperature and time of the GPE were 70$^{\circ}C$ and 70 min, respectively, the lithium polymer battery showed excellent a rate capability and cycleability. The TMPETA (trimethylolpropane ethoxylate triacrylate)/TEGDMA (triethylene glycol dimethacrylate)-based cells prepared under optimized polymerization conditions showed excellent rate capability and low-temperature performances: The discharge capacity of cells at 2 Crate showed 92.1 % against 0.2C rate. The cell at -20 $^{\circ}C$ also delivered 82.4 % of the discharge capacity at room temperature.