• Title/Summary/Keyword: 플라즈마중합

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Surface Modification of Fine Particle by Plasma Grafting in a Circulating Fluidized Bed Reactor under Reduced Pressure (감압 상태 순환유동층 반응기에서 플라즈마 그래프팅에 의한 미세입자 표면 개질)

  • Park, Sounghee
    • Korean Chemical Engineering Research
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    • v.53 no.5
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    • pp.614-619
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    • 2015
  • A plasma surface modification of powders has been carried out in a circulating fluidized bed reactor under reduced pressure. Polystyrene (PS) particles treated by plasma are grafted with polyethylene glycol (PEG) on the surface. The virgin, plasma-treated and grafted powders were characterized by DPPH method, FTIR, SEM and contact angle meter. The plasma-treated PS powders have well formed peroxide on the surface, By PEG grafting polymerization, PEG is well grafted and dispersed on the surface of the plasma-treated PS powders. The PEG-g-PS particle was successfully synthesized using the plasma circulating fluidized bed reactor under reduced pressure.

Plasma Treatment Effect of Organic/Organic Core-Shell Acrylic Adhesive Binder (II) (Organic/Organic Core-Shell 아크릴 접착바인더의 플라즈마 처리영향 (II))

  • Seul, Soo-Duk
    • Polymer(Korea)
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    • v.34 no.2
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    • pp.89-96
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    • 2010
  • Adhesive binders with core-shell structure of organic/organic pair were prepared by emulsion polymerization of acrylic monomers, such as methyl methacrylate(MMA), ethyl acrylate(EA), n-butyl acrylate(BA), and styrene(St). Ammonium persulfate (APS) was used as an water soluble initiator in the presence of an anionic surfactant, sodium dodecyl benzene sulfonate (SDBS). Non-woven fabric and leather were impregnated with the adhesive binder. The surface of the impregnated fabric and leather were treated with plasma technique and then kinetics analysis and mechanical properties were measured. The conversions of the polymerization of core-shell binder (MMA/EA, MMA/BA) were greater than 90%. When the core-shell binder was prepared at equimolar conditions, the increasing effect of the core-shell binder on the state peel strength of the impregnated and plasma-treated non-woven/non-woven fabric has the order of MMA/St, EA/BA, BA/MMA, EA/St, and EA/MMA. When the core-shell binder was prepared at non-equimolar conditions, the increasing effect of the core-shell binder on the state peel strength of the non-woven fabric/leather has the order of MMA/BA, BA/EA, MMA/EA, St/MMA, and EA/St.

A Study on the Gas Permeation Characteristics of Plasma Polymers (플라즈마 고분자에 대한 기체의 투과특성에 관한 연구)

  • Oh, Sae-Joong
    • Membrane Journal
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    • v.4 no.4
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    • pp.205-212
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    • 1994
  • Gas permeation properties of simple gases(He, $H_2,\;CO_2,\;O_2,\;N_2,\;CH_4$) through plasma-polymerized films were investigated, and the chemical structure of the plasma polymers was analyzed by infrared spectra. The plasma-polymerized films were prepared by plasma polymerization of fluorine-containing aromatic compounds, and permeation measurements were made at $35^{\circ}C$, latm. The permeability coefficient of the plasma films decreased as the size of penetrant molecules increased. The plasma polymers showed higher $CO_2/CH_4$ selectivities than those of commonly used polymers, while $O_2/N_2$ selectivities were similar of slightly lower than those of common polymers. FT-IR spectra shows that the plasma polymers contain both aromatic and aliphatic structures.

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플라즈마 중합법에의한 산소부화막 제조

  • 유재철;김흥수;김낙중
    • Proceedings of the Membrane Society of Korea Conference
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    • 1992.10a
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    • pp.13-14
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    • 1992
  • 고분자막을 이용한 분리공정에서 본질적으로 요구되는 성능은 우수한 선택도와 투과속도인데, 이러한 특성들은 막의 화학구조 및 막의 두께 등에 의하여 영향을 받는다. 따라서 선택투과기체와 친화성이 좋은 물질을 박막화하여 제조한다면 분리막으로 우수한 성능을 지닐 수 있을 것이다.

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Organic Transistor Characteristics with Electrode Structures (전극 구조에 따른 유기 트랜지스터 특성)

  • Lee, Boong-Joo
    • The Journal of the Korea institute of electronic communication sciences
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    • v.8 no.1
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    • pp.93-98
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    • 2013
  • In this paper, We have fabricated PMMA thin films by plasma polymerization method for organic thin film transistor's insulator layer. For improving the characteristics of organic transistor, we tested transistor's mobility and output values with organic transistor's electrode structures. As a results, the mobility of top contact was $8{\times}10^{-3}[cm^2V^{-1}s^{-1}]$, that of bottom contact was $2{\times}10^{-4}[cm^2V^{-1}s^{-1}]$. Also, off current of bottom contact was increased. Therefore, we recommend the top contact electrode structure of organic transistor.