Thư viện tri thức trực tuyến
Kho tài liệu với 50,000+ tài liệu học thuật
© 2023 Siêu thị PDF - Kho tài liệu học thuật hàng đầu Việt Nam

INTERFACIAL AND CONFINED WATER Part 9 pps
Nội dung xem thử
Mô tả chi tiết
246 References
[95] M. M. Koza, R. P. May, H. Schober, On the heterogeneous
character of water’s amorphous polymorphism, J. Appl. Crystallogr. 40 (2007) S517–S521.
[96] H. Tanaka, General view of a liquid-liquid phase transition, Phys.
Rev. E 62 (2000) 6968–6976.
[97] V. Brazhkin, R. Voloshin, A. Lyapin, S. Popova, Quasi-transitions
in simple liquids at high pressures, Physics-Uspekhi 42 (1999)
1035–1039.
[98] S. Kiselev, J. Ely, Parametric crossover model and physical limit
of stability in supercooled water, J. Chem. Phys. 116 (2002)
5657–5665.
[99] D. A. Fuentevilla, M. A. Anisimov, Scaled equation of state for
supercooled water near the liquid-liquid critical point, Phys. Rev.
Lett. 97 (2006) 195702.
[100] A. Oleinikova, I. Brovchenko, A. Geiger, B. Guillot, Percolation of water in aqueous solution and liquid–liquid immiscibility,
J. Chem. Phys. 117 (2002) 3296–3304.
[101] H. E. Stanley, A polychromatic correlated-site percolation
problem with possible relevance to the unusual behaviour of
supercooled H2O and D2O, J. Phys. A: Math. Gen. 12 (1979)
L329–L337.
[102] E. Lang, H.-D. Luedemann, Pressure and temperature dependence
of the longitudinal deuterium relaxation times in supercooled
heavy water to 300 MPa and 188 K, Ber. Bunsenges. Phys. Chem.
84 (1980) 462–470.
[103] F. X. Prielmeier, E. W. Lang, R. J. Speedy, H.-D. Luedemann,
Diffusion in supercooled water to 300 MPa, Phys. Rev. Lett. 59
(1987) 1128–1131.
[104] F. X. Prielmeier, E. W. Lang, R. J. Speedy, H.-D. Luedemann,
The pressure dependence of self diffusion in supercooled light and
heavy water, Ber. Bunsenges. Phys. Chem. 92 (1988) 1111–1117.
References 247
[105] K. R. Harris, P. J. Newitt, Self-diffusion of water at low
temperatures and high pressure, J. Chem. Eng. Data 42 (1997)
346–348.
[106] A. Cunsolo, A. Orecchini, C. Petrillo, F. Sacchetti, Quasielastic
neutron scattering investigation of the pressure dependence of
molecular motions in liquid water, J. Chem. Phys. 124 (2006)
084503.
[107] M. Krisch, P. Loubeyre, G. Ruocco, F. Sette, M. D’Astuto,
R. L. Toulec, M. Lorenzen, A. Mermet, G. Monaco, R. Verbeni,
Pressure evolution of the high-frequency sound velocity in liquid
water, Phys. Rev. Lett. 89 (2002) 125502.
[108] F. Li, Q. Cui, Z. He, J. Zhang, Q. Zhou, G. Zou, S. Sasaki, High
pressure-temperature Brillouin study of liquid water: Evidence of
the structural transition from low-density water to high-density
water, J. Chem. Phys. 123 (2005) 174511.
[109] T. Kawamoto, S. Ochiai, H. Kagi, Changes in the structure of
water deduced from the pressure dependence of the Raman OH
frequency, J. Chem. Phys. 120 (2004) 5867–5870.
[110] N. K. Alphonse, S. R. Dillon, R. C. Dougherty, D. K. Galligan,
L. N. Howard, Direct Raman evidence for a weak continuous
phase transition in liquid water, J. Phys. Chem. A 110 (2006)
7577–7580.
[111] T. Young, An essay on the cohesion of fluids, Philos. Trans. R.
Soc. London 95 (1805) 65–87.
[112] J. W. Cahn, Critical point wetting, J. Chem. Phys. 66 (1977)
3667–3672.
[113] H. Nakanishi, M. E. Fisher, Multicriticality of wetting, prewetting,
and surface transitions, Phys. Rev. Lett. 49 (1982) 1565–1568.
[114] K. Binder, D. P. Landau, Wetting and layering in the nearestneighbor simple-cubic Ising lattice: A Monte Carlo investigation,
Phys. Rev. B 37 (1988) 1745–1765.
248 References
[115] K. Binder, D. P. Landau, S. Wansleben, Wetting transitions near
the bulk critical point: Monte Carlo simulations for the Ising
model, Phys. Rev. B 40 (1989) 6971–6979.
[116] K. Binder, D. P. Landau, Wetting versus layering near the
roughening transition in the three-dimensional Ising model, Phys.
Rev. B 46 (1992) 4844–4854.
[117] C. Ebner, W. F. Saam, New reentrant wetting phenomena and
critical behavior near bulk critical points, Phys. Rev. Lett. 58
(1987) 587–590.
[118] C. Ebner, W. F. Saam, Effect of long-range forces on wetting near
bulk critical temperatures: An Ising-model study, Phys. Rev. B 35
(1987) 1822–1834.
[119] G. Forgacs, R. Lipowsky, T. M. Nieuwenhuizen, The behaviour
of interfaces in ordered and disordered systems, in: C. Domb,
J. L. Lebowitz (Eds.), Phase Transitions and Critical Phenomena,
Vol. 14, London: Academic Press, 1991, pp. 135–363.
[120] S. Dietrich, Wetting phenomena, in: C. Domb, J. L. Lebowitz
(Eds.), Phase Transitions and Critical Phenomena, Vol. 12,
London: Academic Press, 1988, pp. 1–218.
[121] K. Binder, D. Landau, M. Mueller, Monte Carlo studies of wetting,
interface localization and capillary condensation, J. Stat. Phys. 110
(2003) 1411–1514.
[122] M. P. Nightingale, W. F. Saam, M. Schick, Wetting and growth
behaviors in adsorbed systems with long-range forces, Phys. Rev.
B 30 (1984) 3830–3840.
[123] S. Dietrich, M. Schick, Critical wetting of surfaces in systems with
long-range forces, Phys. Rev. B 31 (1985) 4718–4720.
[124] M. P. Nightingale, J. O. Indekeu, Examination of the necessity of
complete wetting near critical points in systems with long-range
forces, Phys. Rev. B 32 (1985) 3364–3366.