Hydrophobic effect in the pressure-temperature plane

被引:13
|
作者
Koga, K [1 ]
机构
[1] Okayama Univ, Fac Sci, Dept Chem, Okayama 7008530, Japan
来源
JOURNAL OF CHEMICAL PHYSICS | 2004年 / 121卷 / 15期
关键词
D O I
10.1063/1.1792571
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
The free energy of the hydrophobic hydration and the strength of the solvent-mediated attraction between hydrophobic solute molecules are calculated in the pressure-temperature plane. This is done in the framework of an exactly soluble model that is an extension of the lattice model proposed by Kolomeisky and Widom [A. B. Kolomeisky and B. Widom, Faraday Discuss. 112, 81 (1999)]. The model takes into account both the mechanism of the hydrophobic effect dominant at low temperatures and the opposite mechanism of solvation appearing at high temperatures and has the pressure as a second thermodynamic variable. With this model, two boundaries are identified in the pressure-temperature plane: the first one within which the solubility, or the Ostwald absorption coefficient, decreases with increasing temperature at fixed pressure and the second one within which the strength of solvent-mediated attraction increases with increasing temperature. The two are nearly linear and parallel to each other, and the second boundary lies in the low-temperature and low-pressure side of the first boundary. It is found that a single, near-linear relation between the hydration free energy and the strength of the hydrophobic attraction holds over the entire area within the second boundary in the pressure-temperature plane. (C) 2004 American Institute of Physics.
引用
收藏
页码:7304 / 7312
页数:9
相关论文
共 50 条
  • [1] Protein stability and dynamics in the pressure-temperature plane
    Meersman, F
    Smeller, L
    Heremans, K
    BIOCHIMICA ET BIOPHYSICA ACTA-PROTEINS AND PROTEOMICS, 2006, 1764 (03): : 346 - 354
  • [2] Heteropolymer collapse theory for protein folding in the pressure-temperature plane
    Cheung, Jason K.
    Shah, Pooja
    Truskett, Thomas M.
    BIOPHYSICAL JOURNAL, 2006, 91 (07) : 2427 - 2435
  • [3] Refolding studies using pressure: The folding landscape of lysozyme in the pressure-temperature plane
    Smeller, L
    Meersman, F
    Heremans, K
    BIOCHIMICA ET BIOPHYSICA ACTA-PROTEINS AND PROTEOMICS, 2006, 1764 (03): : 497 - 505
  • [4] Pressure-temperature phase diagrams of in-plane doped CeRhIn5
    Ferreira, L. Mendonca
    Bittar, E. M.
    Pagliuso, P. G.
    Hering, E. N.
    Ramos, S. M.
    Borges, H. A.
    Baggio-Saitovich, E.
    Bauer, E. D.
    Thompson, J. D.
    Sarrao, J. L.
    PHYSICA C-SUPERCONDUCTIVITY AND ITS APPLICATIONS, 2007, 460 (SPEC. ISS.): : 672 - 673
  • [5] Systematic investigation of global phase behavior of polymer mixtures in the pressure-temperature plane
    Gencaslan, Mustafa
    Bilgin, Yuksel
    Keskin, Mustafa
    JOURNAL OF CHEMICAL PHYSICS, 2010, 133 (23):
  • [6] PHASE-DIAGRAM OF ANTI-FERROMAGNETIC CRFE IN THE PRESSURE-TEMPERATURE PLANE
    FAWCETT, E
    VETTIER, C
    JOURNAL DE PHYSIQUE, 1982, 43 (09): : 1365 - 1369
  • [7] Autoclaves for pressure-temperature reactions
    Gooch, DB
    INDUSTRIAL AND ENGINEERING CHEMISTRY, 1943, 35 : 927 - 946
  • [8] PRESSURE-TEMPERATURE STUDY OF SULFOSPINELS
    TRESSLER, RE
    HUMMEL, FA
    STUBICAN, VS
    JOURNAL OF THE AMERICAN CERAMIC SOCIETY, 1968, 51 (11) : 648 - &
  • [9] Pressure-temperature chart for vapors
    Hirsch, M
    INDUSTRIAL AND ENGINEERING CHEMISTRY, 1942, 34 : 174 - 182
  • [10] Autoclaves for pressure-temperature reactions
    Gooch, DB
    INDUSTRIAL AND ENGINEERING CHEMISTRY, 1943, 35 : 1304 - 1304