Frequency-dependent specific heat of viscous silica

被引:47
|
作者
Scheidler, P [1 ]
Kob, W [1 ]
Latz, A [1 ]
Horbach, J [1 ]
Binder, K [1 ]
机构
[1] Johannes Gutenberg Univ Mainz, Inst Phys, D-55099 Mainz, Germany
关键词
D O I
10.1103/PhysRevB.63.104204
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
We apply the Mori-Zwanzig projection operator formalism to obtain an expression for the frequency dependent specific heat c(z) of a liquid. By using an exact transformation formula due to Lebowitz et al., we derive a relation between c(z) and K(t), the autocorrelation function of temperature fluctuations in the microcanonical ensemble. This connection thus allows to determine c(z) from computer simulations in equilibrium, i.e., without an external perturbation. By considering the generalization of K(t) to finite wavevectors, we derive an expression to determine the thermal conductivity lambda from such simulations. We present the results of extensive computer simulations in which we use the derived relations to determine c(z) over eight decades in frequency, as well as lambda. The system investigated is a simple but realistic model for amorphous silica. We find that at high frequencies the real part of c(z) has the value of an ideal gas. c'(w) increases quickly at those frequencies which correspond to the vibrational excitations of the system. At low temperatures c'(w) shows a second step. The frequency at which this step is observed is comparable to the one at which the alpha -relaxation peak is observed in the intermediate scattering function. Also the temperature dependence of the location of this second step is the same as the one of the alpha peak, thus showing that these quantities are intimately connected to each other. From c'(w) we estimate the temperature dependence of the vibrational and configurational part of the specific heat. We find that the static value of c(z) as well as lambda are in good agreement with experimental data.
引用
收藏
页数:14
相关论文
共 50 条
  • [41] Selection on mutators is not frequency-dependent
    Raynes, Yevgeniy
    Weinreich, Daniel
    ELIFE, 2019, 8
  • [42] FREQUENCY-DEPENDENT SEXUAL SELECTION
    ODONALD, P
    MAJERUS, MEN
    PHILOSOPHICAL TRANSACTIONS OF THE ROYAL SOCIETY OF LONDON SERIES B-BIOLOGICAL SCIENCES, 1988, 319 (1196) : 571 - 586
  • [43] Frequency-dependent signal windowing
    Karjalainen, M
    Paatero, T
    PROCEEDINGS OF THE 2001 IEEE WORKSHOP ON THE APPLICATIONS OF SIGNAL PROCESSING TO AUDIO AND ACOUSTICS, 2001, : 35 - 38
  • [44] Modeling frequency-dependent GPR
    Powers, Michael H.
    Leading Edge (Tulsa, OK), 1997, 16 (11): : 1657 - 1662
  • [45] FREQUENCY-DEPENDENT CONDUCTIVITY OF POLYACETYLENE
    GLICK, AJ
    BRYANT, GW
    MOLECULAR CRYSTALS AND LIQUID CRYSTALS, 1982, 83 (1-4): : 1183 - 1190
  • [46] SPECIFIC-HEAT AND FREQUENCY-DEPENDENT AC-SUSCEPTIBILITY OF PRNI2 BELOW 1K
    GREIDANUS, FJAM
    DEJONGH, LJ
    HUISKAMP, WJ
    BUSCHOW, KHJ
    PHYSICA B & C, 1982, 112 (01): : 92 - 97
  • [47] FREQUENCY-DEPENDENT RITZ VECTORS
    XIA, H
    HUMAR, JL
    EARTHQUAKE ENGINEERING & STRUCTURAL DYNAMICS, 1992, 21 (03): : 215 - 231
  • [48] FREQUENCY-DEPENDENT ATTENUATION IN THE CRUST
    TOKSOZ, MN
    MANDAL, B
    DAINTY, AM
    GEOPHYSICAL RESEARCH LETTERS, 1990, 17 (07) : 973 - 976
  • [49] UNDERSTANDING FREQUENCY-DEPENDENT CAUSATION
    MAYO, DG
    JOURNAL OF PHILOSOPHY, 1984, 81 (11): : 731 - 731
  • [50] FREQUENCY-DEPENDENT CONDUCTIVITY IN POLYANILINE
    HAYASHI, T
    HIRAI, Y
    TANAKA, H
    NISHI, T
    JAPANESE JOURNAL OF APPLIED PHYSICS PART 2-LETTERS & EXPRESS LETTERS, 1987, 26 (11): : L1800 - L1802