3.5 Protonic Transport as a Fundamental Mechanism of the Dielectric…
129
40. V.G. Artemov, Dielectric spectrum of water as a proton dynamics response. Bull. Lebedev
Phys. Inst. 42, 187–191 (2015)
41. W. Dieterich, I. Peschel, Memory function approach to the dynamics of interacting Brownian
particles. Physica A: Stat. Mech. Appl. 95, 208–224 (1979)
42. R. Zwanzig, Nonequilibrium Statistical Mechanics (Oxford University Press, Oxford, 2001)
43. P. Fulde, L. Pietronero, W.R. Schneider, S. Strässler, Problem of brownian motion in a periodic
potential. Phys. Rev. Lett. 35, 1776–1779 (1975)
44. R. Kubo, The fluctuation-dissipation theorem. Rep. Prog. Phys. 29, 255–284 (1966)
45. L.D. Landau, E.M. Lifshitz, Physical Kinetics (Pergamon Press, New York, 1981)
46. H. Yada, M. Nagai, K. Tanaka, Origin of the fast relaxation component of water and heavy
water revealed by terahertz time-domain attenuated total reflection spectroscopy. Chem. Phys.
Lett. 464, 166–170 (2008)
47. R. Buchner, J. Barthel, J. Stauber, The dielectric relaxation of water between 0 ◦ C and 35 ◦ C.
Chem. Phys. Lett. 306, 57–63 (1999)
48. A.A. Volkov, V.G. Artemov, A.V. Pronin, A radically new suggestion about the electrodynamics
of water: can the pH index and the Debye relaxation be of a common origin? EPL 106, 46004–6
(2014)
49. C. Jaccard, Mechanism of the electrical conductivity in ice. Ann. NY Acad. Sci. 125, 390–400
(1965)
50. M.J. Gillan, D. Alfé, A. Michaelides, Perspective: How good is DFT for water? J. Chem. Phys.
144 (2016)
Précédent

- 144/231

Suivant