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Supercritical Fluid Gaseous and Liquid States

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Supercritical Fluid Gaseous and Liquid States ( supercritical-fluid-gaseous-and-liquid-states )

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Entropy 2020, 22, 437 25 of 26 23. Magnier, H.J.; Curtis, R.; Woodcock, L.V. Nature of the supercritical mesophase. Nat. Sci. 2014, 6, 797–807. [CrossRef] 24. Magnier, H.J. Understanding Biopharmaceutical Aggregation Using Minimalist Models Based on Square-Well Potential. Ph.D. Thesis, University of Manchester, Manchester, UK, 2016. 25. Heyes, D.M.; Woodcock, L.V. Critical and supercritical properties of Lennard-Jones fluids. Fluid Phase Equilibria 2013, 356, 301–308. [CrossRef] 26. He, S.; Attard, P. Surface tension of the Lennard-Jones liquid under supersaturation. Phys. Chem. Chem. Phys. 2005, 7, 2928–2935. [CrossRef] 27. Potoff, J.T.; Panagiotopoulos, A.Z. Surface tension of the three-dimensional Lennard-Jones fluid from histogram reweighting Monte Carlo simulations. J. Chem. Phys. 2000, 112, 6411–6415. [CrossRef] 28. Woodcock, L.V. Thermodynamic fluid equations-of-state. Entropy 2018, 20, 22–37. [CrossRef] 29. Bradley, W.P.; Browne, A.W.; Hale, C.F. Liquid above the critical temperature. Phys. Rev. 1908, 27, 90–95. [CrossRef] 30. Van der Waals, J.D. Nobel Lecture “The Equation of State of Gases and Liquids”. Available online: https://www.nobelprize.org/prizes/physics/1910/waals/lecture/ (accessed on 4 March 2020). 31. Mills, A.A. The critical transition between the liquid and gaseous conditions of matter. Endeavour 1993, 17, 203–209. [CrossRef] 32. Traube, I. On the critical temperature. Trans. Faraday Soc. 1938, 34, 1234–1235. [CrossRef] 33. Tapp, J.S.; Steacie, E.W.R.; Maass, O. An investigation into the density of a vapor in equilibrium with a liquid near its critical temperature. Can. J. Res. 1933, 9, 217–239. [CrossRef] 34. Winkler, C.A.; Maass, O. Density differences at the critical temperature. Can. J. Res. 1933, 9, 613–629. [CrossRef] 35. Maass, O.; Geddes, A.L. The persistence of the liquid state of aggregation above the critical temperature: The system ethylene. Phil. Trans. R. Soc. 1937, A236, 303–332. 36. Maass, O. Changes in the liquid state in the critical temperature region. Chem. Rev. 1938, 23, 17–27. [CrossRef] 37. McIntosh, R.L.; Maass, O. Persistence of the liquid state of aggregation above the critical temperature. Can. J. Res. 1938, 16b, 289–302. [CrossRef] 38. Dacey, J.; McIntosh, R.L.; Maass, O. Pressure, volume, temperature relations of ethylene in the critical region I. Can. J. Res. 1939, 17b, 206–213. [CrossRef] 39. McIntosh, R.L.; Dacey, J.R.; Maass, O. Pressure, volume, temperature relations of ethylene in the critical region II. Can. J. Res. 1939, 17b, 241–250. [CrossRef] 40. Mason, S.G.; Naldrett, S.N.; Maass, O. A study of the coexistence of the gaseous and liquid states in the critical temperature region: Ethane. Can. J. Res. 1940, 18b, 103–117. [CrossRef] 41. Naldrett, S.N.; Maass, O. A study of the coexistence of the gaseous and liquid states in the critical temperature region: Ethylene. Can. J. Res. 1940, 18b, 118–121. [CrossRef] 42. Guggenheim, E.A. The Principle of Corresponding states. J. Chem. Phys. 1945, 13, 253–261. [CrossRef] 43. McCormack, E.; Schneider, W.G. Isotherms of Sulphur Hexafluoride in the critical temperature region. Can. J. Chem. 1951, 29, 699–714. [CrossRef] 44. Weinberger, M.A.; Schneider, W.G. On the liquid vapor coexistence curve of Xenon in the region of the critical temperature. Can. J. Chem. 1952, 30, 422–437. [CrossRef] 45. Habgood, H.W.; Schneider, W.G. PVT Measurements in the critical region of Xenon. Can. J. Chem. 1954, 32, 98–112. [CrossRef] 46. Zimm, B. Contribution to the Theory of Critical Phenomena. J. Chem. Phys. 1951, 19, 1019–1023. [CrossRef] 47. Mayer, J.E.; Harrison, S.F. Statistical mechanics of condensing systems. III. J. Chem. Phys. 1938, 6, 87. [CrossRef] 48. Rice, O.K. On the behavior of pure substances near the critical point. J. Chem. Phys. 1947, 15, 314–332. [CrossRef] 49. Rossini, F.D. Thermodynamics and Physics of Matter, 1st ed.; Oxford University Press: London, UK, 1955; pp. 419–500. 50. Gilgen, R.; Kleinrahm, R.; Wagner, W. Measurement and correlation of the (pressure, density, temperature) relation of argon. I. The homogeneous gas and liquid regions in the temperature range from 90 to 300 K at pressures up to 12 MPa. J. Chem. Thermodyn. 1994, 26, 383–398. [CrossRef]

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