화학공학소재연구정보센터
Korean Journal of Chemical Engineering, Vol.34, No.6, 1781-1785, June, 2017
Phase behavior of arbutin/ethanol/supercritical CO2 at elevated pressures
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The phase behavior of a ternary system containing arbutin, which is effective for skin lightening, in a solvent mixture of ethanol and supercritical carbon dioxide (CO2) was investigated. A high-pressure phase equilibrium apparatus equipped with a variable-volume view cell was used to measure the phase equilibrium loci of the ethanol+CO2 binary mixture from 298.2 K to 313.2 K and pressures between 2MPa and 9MPa. The solubility of arbutin in the mixed solvent comprising ethanol and CO2, which equivalently represents the critical locus of T-x, was determined as a function of temperature, pressure, and solvent composition by measuring the cloud points under various conditions. Throughout, the arbutin loading was maintained at 1.5 wt% on a CO2-free basis in the solvent mixture and the pressure and temperature were varied up to 14MPa and 334 K, respectively. For a CO2 loading less than 34wt% on ethanol basis, the cloud point was not observed. However, the solid remained undissolved when the CO2 loading exceeded 54 wt%. Between these loadings, steep and almost pressure-insensitive solubility curves, which extended downward to the vaporization boundary, were found.
  1. Engasser PE, Maibach HI, J. Am. Acad. Dermatol., 5, 143 (1981)
  2. Findley GH, Morrison JGL, Simon IW, Br. J. Dermatol., 93, 613 (1975)
  3. Paik JH, Lee MH, Korean J. Dermatol., 38, 1303 (2000)
  4. Maeda K, Fukuda M, J. Pharm. Exp. Therap., 276, 765 (1996)
  5. Oliver AE, Crowe LM, Araujo PS, Fisk DE, Crowe JH, Biochim. Biophys. Acta, 1302, 69 (1996)
  6. Martin A, Cocero MJ, Adv. Drug Deliv. Rev., 60, 339 (2008)
  7. Krukonis VJ, Supercritical Fluid Nucleation of Difficult-to-Comminute Solids, Paper presented at the AIChE Annual Meeting, San Francisco, CA (1984).
  8. Paulaitis ME, Penninger JML, Gray RD, Davidson P, Eds. Chemical Engineering at Supercritical Fluid Condition, Ann Arbor Science, Ann Arbor (1983).
  9. Gallagher PM, Coffey MP, Krukonis VJ, Klasutis NK, Johnston PJ, Penninger ML, Supercritical Fluid Science and Technology, ACS Symposium Series 406, ACS, Washington D.C. (1989).
  10. Kang DY, Min BJ, Rho SG, Kang CH, Korean Chem. Eng. Res., 46(5), 958 (2008)
  11. Bahrami M, Ranjbarian S, J. Supercrit. Fluids, 40(2), 263 (2007)
  12. Peng DY, Robinson DR, Ind. Eng. Chem. Fundam., 15, 59 (1976)
  13. Poling BE, Prausnitz JM, O’Connel JP, The Properties of Gases and Liquids, 5th Ed., McGraw-Hill, New York (2001).
  14. Jang YS, Choi YS, Byun HS, Korean J. Chem. Eng., 32(5), 958 (2015)
  15. Choi YS, Chio SW, Byun HS, Korean J. Chem. Eng., 32, 277 (2016)
  16. Han CN, Kang CH, J. Nanosci. Nanotechnol., 16, 6936 (2016)
  17. van Konynenburg PH, Scott RL, Philos. Trans. R. Soc. Lond. Ser. A-Math. Phys. Eng. Sci., 289, 495 (1980)
  18. McHugh MA, Krukonis VJ, Supercritical Fluid Extraction: Principles and Practice, 2nd Ed., Butterworth-Heinemann, Boston (1994).
  19. Byun HS, Kim CH, Kwak C, Korean Chem. Eng. Res., 30, 387 (1992)
  20. Prausnitz JM, Lichtenthaler RN, de Azervedo EG, Molecular Thermodynamics of Fluid Phase Equilibria, 2nd Ed., Prentice- Hall Inc., New Jersey (1987).
  21. Lee JU, Chung GY, J. Korean Ind. Eng. Chem., 6(5), 819 (1995)
  22. Byun HS, Yoo KP, Fluid Phase Equilib., 249(1-2), 55 (2006)
  23. Baker JA, Aust. J. Chem., 6, 207 (1953)
  24. Aspen Plus® User Guide, Version 12.1 (2003).
  25. Ziegler JW, Chester TL, Innis DP, Page SH, Dorsey JG, in Innovations in supercritical fluids. science and technology, Hutchenson KW, Foster NR Eds., American Chemical Society, Washington, D.C. (1995).
  26. Lucien FP, Foster NR, J. Supercrit. Fluids, 17(2), 111 (2000)