Supercritical fluid (English Wikipedia)

Analysis of information sources in references of the Wikipedia article "Supercritical fluid" in English language version.

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  • Schlosky, Kevin (1989). "Supercritical phase transitions at very high pressure". J. Chem. Educ. 66 (12): 989. Bibcode:1989JChEd..66..989S. doi:10.1021/ed066p989.
  • Koschinsky, Andrea (2008). "Hydrothermal venting at pressure-temperature conditions above the critical point of seawater, 5°S on the Mid-Atlantic Ridge". Geology. 36 (8): 615. Bibcode:2008Geo....36..615K. doi:10.1130/G24726A.1.
  • Gordon, R. P. (1972). "A Supercritical Phase Separation". Journal of Chemical Education. 49 (4): 249–252. doi:10.1021/ed049p249.
  • Bridgman, P. (1914). "Change of Phase under Pressure. I. The Phase Diagram of Eleven Substances with Especial Reference to the Melting Curve". Phys. Rev. 3 (2): 126. Bibcode:1914PhRv....3..126B. doi:10.1103/PhysRev.3.126.
  • Mishima, O. (1978). "Melting curve of ice VII". J. Chem. Phys. 68 (10): 4417. Bibcode:1978JChPh..68.4417M. doi:10.1063/1.435522.
  • Berche, Bertrand; Henkel, Malte; Kenna, Ralph (2009). "Critical phenomena: 150 years since Cagniard de la Tour". Journal of Physical Studies. 13 (3): 3001–1–3001–4. arXiv:0905.1886. Bibcode:2009arXiv0905.1886B. doi:10.1590/S1806-11172009000200015. S2CID 5153362.
  • Lebonnois, Sebastien; Schubert, Gerald (2017-06-26). "The deep atmosphere of Venus and the possible role of density-driven separation of CO2 and N2" (PDF). Nature Geoscience. 10 (7). Springer Science and Business Media LLC: 473–477. Bibcode:2017NatGe..10..473L. doi:10.1038/ngeo2971. ISSN 1752-0894. S2CID 133864520.
  • Aizpurua-Olaizola, Oier; Ormazabal, Markel; Vallejo, Asier; Olivares, Maitane; Navarro, Patricia; Etxebarria, Nestor; Usobiaga, Aresatz (2015-01-01). "Optimization of Supercritical Fluid Consecutive Extractions of Fatty Acids and Polyphenols from Vitis Vinifera Grape Wastes". Journal of Food Science. 80 (1): E101 – E107. doi:10.1111/1750-3841.12715. ISSN 1750-3841. PMID 25471637.
  • Bart, C. J. (2005). "Chapter 4: Separation Techniques". Additives in Polymers: industrial analysis and applications. John Wiley and Sons. p. 212. doi:10.1002/0470012064.ch4. ISBN 978-0-470-01206-2.
  • R. Scott Oakes; Anthony A. Clifford; Keith D. Bartle; Mark Thornton Pett & Christopher M. Rayner (1999). "Sulfur oxidation in supercritical carbon dioxide: dramatic pressure dependent enhancement of diastereoselectivity for sulphoxidation of cysteine derivatives". Chemical Communications. 44 (3): 247–248. doi:10.1039/a809434i.
  • Yeo, Sang-Do & Kiran, Erdogan (July 2005). "Formation of polymer particles with supercritical fluids: A review". The Journal of Supercritical Fluids. 34 (3): 287–308. doi:10.1016/j.supflu.2004.10.006.
  • Padrela, L.; Rodrigues, M.A.; Velaga, S.P.; Matos, H.A.; Azevedo, E.G. (2009). "Formation of indomethacin–saccharin cocrystals using supercritical fluid technology". European Journal of Pharmaceutical Sciences. 38 (1): 9–17. doi:10.1016/j.ejps.2009.05.010. PMID 19477273.
  • Padrela, Luis (2010). "Screening for pharmaceutical cocrystals using the supercritical fluid enhanced atomization process". The Journal of Supercritical Fluids. 53 (1–3): 156–164. doi:10.1016/j.supflu.2010.01.010.
  • Sharan, Prashant; Dugas, Michael; Ravichandran, Santosh; Castro, Raymond; Biswas, Ayan; Warsinger, David M.; Singh, Rajinder; Currier, Robert P.; Findikoglu, Alp T. (2025). "Supercritical water desalination and oxidation (SCWDO): Effectiveness on complex solutions, technoeconomic, and CO2 impact for produced water treatment". Desalination: 118963. doi:10.1016/j.desal.2025.118963. Retrieved 2025-05-02.
  • Satyakam, R.; Malhotra, A. (2000). American Institute of Aeronautics and Astronautics (ed.). Influence of climatic parameters on optimal design of supercritical power plants. 35th Intersociety Energy Conversion Engineering Conference & Exhibit (IECEC). Vol. 2. Reston, Va.: American Institute of Aeronautics & Astronautics. pp. 1053–1058. doi:10.1109/IECEC.2000.870911. ISBN 978-1-56347-375-3.
  • Kunchana Bunyakiat; Sukunya Makmee; Ruengwit Sawangkeaw & Somkiat Ngamprasertsith (2006). "Continuous Production of Biodiesel via Transesterification from Vegetable Oils in Supercritical Methanol". Energy & Fuels. 20 (2): 812–817. doi:10.1021/ef050329b.
  • "Carbon Capture and Storage". The hydrogen economy: opportunities, costs, barriers, and R&D needs. Washington, D.C.: National Academies Press. 2004. p. 84. doi:10.17226/10922. ISBN 978-0-309-09163-3.
  • Ye, Xiang-Rong; Lin, YH & Wai, CM (2003). "Supercritical fluid fabrication of metal nanowires and nanorods templated by multiwalled carbon nanotubes". Advanced Materials. 15 (4): 316–319. Bibcode:2003AdM....15..316Y. doi:10.1002/adma.200390077. S2CID 97714765.
  • Cinquemani, C; Boyle, C; Bach, E & Schollmeyer, E (2007). "Inactivation of microbes using compressed carbon dioxide - An environmentally sound disinfection process for medical fabrics". Journal of Supercritical Fluids. 42 (3): 392–397. doi:10.1016/j.supflu.2006.11.001.
  • Fraser, D (1951). "Bursting bacteria by release of gas pressure". Nature. 167 (4236): 33–34. Bibcode:1951Natur.167...33F. doi:10.1038/167033b0. PMID 14796728. S2CID 8130763.

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  • Schlosky, Kevin (1989). "Supercritical phase transitions at very high pressure". J. Chem. Educ. 66 (12): 989. Bibcode:1989JChEd..66..989S. doi:10.1021/ed066p989.
  • Koschinsky, Andrea (2008). "Hydrothermal venting at pressure-temperature conditions above the critical point of seawater, 5°S on the Mid-Atlantic Ridge". Geology. 36 (8): 615. Bibcode:2008Geo....36..615K. doi:10.1130/G24726A.1.
  • Bridgman, P. (1914). "Change of Phase under Pressure. I. The Phase Diagram of Eleven Substances with Especial Reference to the Melting Curve". Phys. Rev. 3 (2): 126. Bibcode:1914PhRv....3..126B. doi:10.1103/PhysRev.3.126.
  • Mishima, O. (1978). "Melting curve of ice VII". J. Chem. Phys. 68 (10): 4417. Bibcode:1978JChPh..68.4417M. doi:10.1063/1.435522.
  • Berche, Bertrand; Henkel, Malte; Kenna, Ralph (2009). "Critical phenomena: 150 years since Cagniard de la Tour". Journal of Physical Studies. 13 (3): 3001–1–3001–4. arXiv:0905.1886. Bibcode:2009arXiv0905.1886B. doi:10.1590/S1806-11172009000200015. S2CID 5153362.
  • Lebonnois, Sebastien; Schubert, Gerald (2017-06-26). "The deep atmosphere of Venus and the possible role of density-driven separation of CO2 and N2" (PDF). Nature Geoscience. 10 (7). Springer Science and Business Media LLC: 473–477. Bibcode:2017NatGe..10..473L. doi:10.1038/ngeo2971. ISSN 1752-0894. S2CID 133864520.
  • Ye, Xiang-Rong; Lin, YH & Wai, CM (2003). "Supercritical fluid fabrication of metal nanowires and nanorods templated by multiwalled carbon nanotubes". Advanced Materials. 15 (4): 316–319. Bibcode:2003AdM....15..316Y. doi:10.1002/adma.200390077. S2CID 97714765.
  • Fraser, D (1951). "Bursting bacteria by release of gas pressure". Nature. 167 (4236): 33–34. Bibcode:1951Natur.167...33F. doi:10.1038/167033b0. PMID 14796728. S2CID 8130763.

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  • Aizpurua-Olaizola, Oier; Ormazabal, Markel; Vallejo, Asier; Olivares, Maitane; Navarro, Patricia; Etxebarria, Nestor; Usobiaga, Aresatz (2015-01-01). "Optimization of Supercritical Fluid Consecutive Extractions of Fatty Acids and Polyphenols from Vitis Vinifera Grape Wastes". Journal of Food Science. 80 (1): E101 – E107. doi:10.1111/1750-3841.12715. ISSN 1750-3841. PMID 25471637.
  • Padrela, L.; Rodrigues, M.A.; Velaga, S.P.; Matos, H.A.; Azevedo, E.G. (2009). "Formation of indomethacin–saccharin cocrystals using supercritical fluid technology". European Journal of Pharmaceutical Sciences. 38 (1): 9–17. doi:10.1016/j.ejps.2009.05.010. PMID 19477273.
  • Fraser, D (1951). "Bursting bacteria by release of gas pressure". Nature. 167 (4236): 33–34. Bibcode:1951Natur.167...33F. doi:10.1038/167033b0. PMID 14796728. S2CID 8130763.

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