Plasmons at shock fronts

被引:23
作者
Gilman, JJ [1 ]
机构
[1] Univ Calif Los Angeles, Los Angeles, CA 90095 USA
来源
PHILOSOPHICAL MAGAZINE B-PHYSICS OF CONDENSED MATTER STATISTICAL MECHANICS ELECTRONIC OPTICAL AND MAGNETIC PROPERTIES | 1999年 / 79卷 / 04期
关键词
D O I
10.1080/13642819908205740
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
In dense solids, plasmons are the collective analogues of the individual polarization oscillations that occur in molecules. This type of excitation can occur in all solids. It consists of motion of the valence electrons relative to the background of positively charged ions. The oscillation frequency, omega(p) is given by (4 pi nq(2)/m)(1/2), where n = electron density, q = electron charge, and m = electron mass. Experimental plasma frequencies (from EELS) are also given by c(1/2)B, where B = bulk modulus and c is a constant. In addition, for the simple metals, omega(p) = mu S-4/5, where S is the specific surface energy, and mu is a constant. In semiconductors, the plasmon energy is related to, but much larger than, the band gap. Plasmas are transparent to optical wavelengths shorter than the plasmon wavelength (1550 Angstrom for Li, for example), so plasmon diagnosis might be useful for studying in situ shock propagation. Since a shock front is itself a collective excitation with a large chemical potential gradient, it can readily excite plasmons. For example, a 200 kbar impact can excite the 15 keV plasmon in Al. The damping in the electron gas is very small, so resonant excitation can occur readily. In metals, shock fronts are interfaces between plasmas of differing densities. From the plasmon energies, estimates of the interfacial energies which relate to the structures of shock fronts can be made.
引用
收藏
页码:643 / 654
页数:12
相关论文
共 25 条
[1]   ENERGY-LOSS SPECTRA AND PLASMON DISPERSIONS IN ALKALI-METALS - NEGATIVE PLASMON DISPERSION IN CS [J].
ARYASETIAWAN, F ;
KARLSSON, K .
PHYSICAL REVIEW LETTERS, 1994, 73 (12) :1679-1682
[2]  
BORN M, 1964, PRINCIPLES OPTICS, P624
[3]  
BRISH AA, 1960, SOV PHYS JETP-USSR, V11, P15
[4]   REAL-SPACE DETERMINATION OF ANISOTROPIC ELECTRONIC-STRUCTURE BY ELECTRON-ENERGY LOSS SPECTROSCOPY [J].
BROWNING, ND ;
YUAN, J ;
BROWN, LM .
ULTRAMICROSCOPY, 1991, 38 (3-4) :291-298
[5]  
Cook M.A., 1958, The science of high explosives
[6]  
DENHARTOG JP, 1956, MECH VIBRATIONS, pCH7
[7]  
EGERTON RF, 1996, ELECT ENERGY LOSS SP, P431
[8]   One-electron excitations, correlation effects, and the plasmon in cesium metal [J].
Fleszar, A ;
Stumpf, R ;
Eguiluz, AG .
PHYSICAL REVIEW B, 1997, 55 (04) :2068-2072
[9]   PLASMA OSCILLATIONS AND ENERGY LOSS OF CHARGED PARTICLES IN SOLIDS [J].
FROHLICH, H ;
PELZER, H .
PROCEEDINGS OF THE PHYSICAL SOCIETY OF LONDON SECTION A, 1955, 68 (06) :525-529
[10]   LINE-SHAPE OF PLASMA RESONANCE IN SIMPLE METALS [J].
GIBBONS, PC ;
SCHNATTERLY, SE ;
RITSKO, JJ ;
FIELDS, JR .
PHYSICAL REVIEW B, 1976, 13 (06) :2451-2460