ELECTRONICALLY DRIVEN ADSORBATE EXCITATION MECHANISM IN FEMTOSECOND-PULSE LASER-DESORPTION

被引:182
作者
BRANDBYGE, M
HEDEGARD, P
HEINZ, TF
MISEWICH, JA
NEWNS, DM
机构
[1] TECH UNIV DENMARK,DEPT PHYS,DK-2800 LYNGBY,DENMARK
[2] NIELS BOHR INST,ORSTED LAB,DK-2100 COPENHAGEN,DENMARK
[3] IBM CORP,THOMAS J WATSON RES CTR,YORKTOWN HTS,NY 10598
来源
PHYSICAL REVIEW B | 1995年 / 52卷 / 08期
关键词
D O I
10.1103/PhysRevB.52.6042
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Femtosecond-pulse laser desorption is a process in which desorption is driven by a subpicosecond temperature pulse of order 5000 K in the substrate-adsorbate electron system, whose energy is transferred into the adsorbate center-of-mass degrees of freedom by a direct coupling mechanism. We present a systematic theoretical treatment of this coupling process in the language of an electronic friction, which generates Langevin noise in the adsorbate center-of-mass degrees of freedom, while the electronic degrees of freedom are at a high temperature. Starting from an influence-functional path-integral description, a simple formula for the electronic friction is defined which is valid at all electronic temperatures. At low temperatures the formalism makes contact with the electronic friction appearing in the theory of adsorbate vibrational damping, whereas at high temperatures comparable with the adsorbate electronic excitation energies the friction becomes strongly temperature dependent due to dominance by virtual excitations between different adsorbate potential energy surfaces. The former regime is related to the electronic friction model for the desorption process, and the latter to the desorption induced by multiple electronic transistions model for the process; the present formulation comprises both regimes. Desorption is calculated both by a simple quasianalytic Kramers rate approach, and by numerical solution to the Langevin equation. The magnitude of the desorbed fraction and the time scale for desorption are compared to experimental results.
引用
收藏
页码:6042 / 6056
页数:15
相关论文
共 33 条
[1]   THEORY OF THERMAL RELAXATION OF ELECTRONS IN METALS [J].
ALLEN, PB .
PHYSICAL REVIEW LETTERS, 1987, 59 (13) :1460-1463
[2]   ELECTRON-HOLE PAIR VERSUS PHONON EXCITATION IN MOLECULE SURFACE COLLISIONS [J].
BILLING, GD .
CHEMICAL PHYSICS, 1987, 116 (02) :269-282
[3]   FRICTION COEFFICIENT OF AN ADSORBED H-ATOM ON A METAL-SURFACE [J].
BOHNEN, KP ;
KIWI, M ;
SUHL, H .
PHYSICAL REVIEW LETTERS, 1975, 34 (24) :1512-1515
[4]   KINETIC-THEORY OF THERMAL DESORPTION [J].
BRENIG, W ;
MULLER, H ;
SEDLMEIER, R .
PHYSICS LETTERS A, 1975, 54 (02) :109-110
[5]   VIBRATIONAL DISTRIBUTIONS IN DESORPTION INDUCED BY FEMTOSECOND LASER-PULSES - COUPLING OF ADSORBATE VIBRATION TO SUBSTRATE ELECTRONIC EXCITATION [J].
BUDDE, F ;
HEINZ, TF ;
KALAMARIDES, A ;
LOY, MMT ;
MISEWICH, JA .
SURFACE SCIENCE, 1993, 283 (1-3) :143-157
[6]   FEMTOSECOND TIME-RESOLVED MEASUREMENT OF DESORPTION [J].
BUDDE, F ;
HEINZ, TF ;
LOY, MMT ;
MISEWICH, JA ;
DEROUGEMONT, F ;
ZACHARIAS, H .
PHYSICAL REVIEW LETTERS, 1991, 66 (23) :3024-3027
[7]   PATH INTEGRAL APPROACH TO QUANTUM BROWNIAN-MOTION [J].
CALDEIRA, AO ;
LEGGETT, AJ .
PHYSICA A, 1983, 121 (03) :587-616
[8]   THE THEORY OF A GENERAL QUANTUM SYSTEM INTERACTING WITH A LINEAR DISSIPATIVE SYSTEM [J].
FEYNMAN, RP ;
VERNON, FL .
ANNALS OF PHYSICS, 1963, 24 (01) :118-173
[9]  
FEYNMAN RP, 1965, QUANTUM MECHANICS PA, pCH12
[10]  
GARDINER CW, 1988, IBM J RES DEV, V32, P1