• Title/Summary/Keyword: supercritical cyclohexane

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Synthesis of polyphenylcarbosilane via thermal rearrangement of polymethylphenylsilane in supercritical cyclohexane

  • Shin, Hee-Yong;Ryu, Jae-Hun;Bae, Seong-Youl;Lee, Yoon-Joo;Kwon, Woo-Teck;Kim, Young-Hee;Kim, Soo-Ryong
    • Journal of the Korean Applied Science and Technology
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    • v.30 no.1
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    • pp.9-15
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    • 2013
  • A new process for the synthesis of polyphenylcarbosilane (PPCS) via thermal rearrangement of polymethylphenylsilane (PMPS) in supercritical cyclohexane was proposed and investigated at reaction temperatures of $380-420^{\circ}C$, reaction times of 1-2 h, and a pressure of 15 MPa. The structure, molecular weight, and molecular weight distribution of the product were characterized by FT-IR, Si-NMR, and GPC. The ceramic yield was also measured by TGA analysis. High-quality PPCS with high molecular weight and ceramic yield can be synthesized via a supercritical process. Furthermore, this process, when compared to the conventional method, tends to moderate the reaction conditions such as reaction temperature and time. It is concluded that thermal rearrangement in supercritical fluid is an efficient and viable process in terms of the resulting yield, efficiency, and reaction time compared with those of the conventional PCS production process.

Enzymatic Biodiesel Synthesis from Canola Oil in Liquid Carbon Dioxide (액체 이산화탄소 조건에서의 캐놀라 오일 유래의 효소적 바이오디젤 생산)

  • Lee, Myung-Gu;Park, Chul-Hwan;Cho, Jae-Hoon;Lee, Jun-Hak;Lee, Do-Hoon;Kim, Sang-Yong
    • KSBB Journal
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    • v.25 no.4
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    • pp.337-343
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    • 2010
  • It has been well known that organic solvents like t-butanol and n-hexane can protect lipases from the inhibition by short-chain alcohols in the enzymatic transesterification. However, use of the organic solvents should be minimized considering their negative effects on environment and human health. Therefore, use of the greener solvents has been pursued in various are as including the enzymatic biotranformation. In this study, the liquid carbon dioxide ($LCO_2$) was employed as an alternative media for the enzymatic transesterification of canola oil. The conversion in the $LCO_2$ was comparable with those in organic solvents and the supercritical carbon dioxide, and under optimum conditions, the value reached 99.7%. It is expected that this method can provide a new type of biodiesel production process with higher energy efficiency and lower environmental impact.