• Title/Summary/Keyword: 기능성 도펀트

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Conducting Polymers with Functional Dopants and their Applications in Energy, Environmental Technology, and Nanotechnology

  • Kim, Sung Yeol;Song, Hyun-Kon
    • Clean Technology
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    • v.21 no.1
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    • pp.12-21
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    • 2015
  • Development of novel conducting polymers (CPs) is expected to facilitate the advancement of functional materials used for energy, environmental, and nanotechnology. Recent research efforts are focused on doping CPs with functional dopants to enhance their performance or add additional functions that are not inherent in CPs. This review surveys literatures about the doped CPs focusing on the roles of functional dopants, unlike other reviews focusing on the development of new conducting polymer backbones. The functional dopants presented in this review include redox active molecules, carbon nanomaterials, biopolymers, and chelating molecules. Depending on the dopants and their physicochemical properties, the doped CPs can be used for a variety of applications such as polymer batteries, membranes for waste water treatment, and chemical sensors. A major challenge of the CPs is presented and the ways to overcome the challenge is also suggested for the future development of stable, high performance CPs.

Influence of Polymer Morphology and Dispersibility on Mechanical Properties and Electrical Conductivity of Solution-cast PANI-DBSA/HIPS Blends (용액 캐스팅으로 제조한 PANI-DBSA/HIPS 블렌드에서 분산성 및 모폴로지가 기계적 특성과 전기전도도에 미치는 영향)

  • Lee, Jong-Hyeok;Choi, Sun-Woong;Kim, Eun-Ok
    • Polymer(Korea)
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    • v.35 no.6
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    • pp.543-547
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    • 2011
  • A study has been done to enhance the mechanical properties and processability of electrically conductive polyaniline(PANI) without the polymer's structural alternation. Functionalized acid doped PANI (PANI-DBSA) was prepared by an emulsion polymerization, and dodecylbenzenesulfonic acid (DBSA) played both roles of surfactant and dopant. Also, PANI-DBSA was solution cast blended with high impact polystyrene (HIPS) to produce PANI-DBSA/HIPS blend film. The structure and electrical properties of the conducting polymer blends were observed through UV-vis and FTIR/ATR spectroscopy. A study of the blend was carried by focusing on observation of mechanical and electrical properties based on dispersibility and changes in polymer morphology. The conductivity of the blends was increased by increasing the content of PANI-DBSA, and the sudden increase of conductivity to $3.5{\times}10^{-4}$ S/cm was observed even under a low content of 9 wt%. There was a strong association of continuous network formation with percolation and conductivity in the conducting polymer blends.