A contribution to the understanding of the plasma ignition mechanism above a metal target under UV laser irradiation

被引:24
作者
Thomann, AL
BoulmerLeborgne, C
Dubreuil, B
机构
[1] GREMI, Université d'Orléans, 45067 Orléans Cédex 2
关键词
D O I
10.1088/0963-0252/6/3/006
中图分类号
O35 [流体力学]; O53 [等离子体物理学];
学科分类号
070204 ; 080103 ; 080704 ;
摘要
In this paper, the plasma ignition process above a metallic surface submitted to UV laser irradiation is studied. An easy model based on the hypothesis of thermal equilibrium between ejected vapour and heated surface, and of a local thermodynamic equilibrium state of the vapour, is used to characterize the metallic vapour at the end of the laser pulse, Then the efficiency of the different elementary mechanisms liable to sustain or to prevent the ionization process in this medium is discussed depending on the laser power density, In this work, the calculations are applied to the case of the interaction between an excimer XeCl laser beam (lambda = 308 nm, tau(1) = 28 ns) and titanium target. It is shown that the thermal heated metallic vapour is partially ionized and contains excited and singly ionized species al high densities (10(19)-10(20) atoms cm(-2)), The electron temperature in this medium is found to be around 1 eV. The study of the ionization rise in the vapour evidences the important role played by the single-photon ionization process and the electron/ion inverse bremsstrahlung effect. For laser power densities above 100 MW cm(-2) (laser fluence of 2 J cm(-2)) the ionization level is found to increase before the laser pulse end, and a thermal evaporation regime is reached, as the laser power density exceeds 500 MW cm(-2) (fluence of 10 J cm(-2)), an avalanche breakdown is liable to occur in the vapour before the pulse end and the plasma governs the evaporation mode. The results presented here are in goad agreement with experimental observations and with results from more complex models reported in the literature.
引用
收藏
页码:298 / 306
页数:9
相关论文
共 26 条
[1]   Plasma formation resulting from the interaction of a laser beam with a solid metal target in an ambient gas [J].
Boulmer-Leborgne, Chantal ;
Hermann, Joerg ;
Dubreuil, Bernard .
PLASMA SOURCES SCIENCE & TECHNOLOGY, 1993, 2 (03) :219-226
[2]  
Brown S.C., 1959, BASIC DATA PLASMA PH
[3]   LASER ABLATION DEPOSITION - MECHANISM AND APPLICATION [J].
DIELEMAN, J ;
VANDERIET, E ;
KOOLS, JCS .
JAPANESE JOURNAL OF APPLIED PHYSICS PART 1-REGULAR PAPERS SHORT NOTES & REVIEW PAPERS, 1992, 31 (6B) :1964-1971
[4]   CU0, CU+, AND CU-2 FROM EXCIMER-ABLATED COPPER [J].
DREYFUS, RW .
JOURNAL OF APPLIED PHYSICS, 1991, 69 (03) :1721-1729
[5]   COMPARISON BETWEEN INFRARED AND ULTRAVIOLET-LASER ABLATION AT ATMOSPHERIC-PRESSURE - IMPLICATIONS FOR SOLID SAMPLING INDUCTIVELY-COUPLED PLASMA SPECTROMETRY [J].
GEERTSEN, C ;
BRIAND, A ;
CHARTIER, F ;
LACOUR, JL ;
MAUCHIEN, P ;
SJOSTROM, S ;
MERMET, JM .
JOURNAL OF ANALYTICAL ATOMIC SPECTROMETRY, 1994, 9 (01) :17-22
[6]  
Griem H. R., 1974, Spectral Line Broadening by Plasmas
[7]  
Griem HR, 1964, Plasma Spectroscopy
[8]   INFLUENCE OF IRRADIATION CONDITIONS ON PLASMA EVOLUTION IN LASER-SURFACE INTERACTION [J].
HERMANN, J ;
BOULMERLEBORGNE, C ;
DUBREUIL, B ;
MIHAILESCU, JN .
JOURNAL OF APPLIED PHYSICS, 1993, 74 (05) :3071-3079
[9]   PLASMA DIAGNOSTICS IN PULSED-LASER TIN LAYER DEPOSITION [J].
HERMANN, J ;
THOMANN, AL ;
BOULMERLEBORGNE, C ;
DUBREUIL, B ;
DEGIORGI, ML ;
PERRONE, A ;
LUCHES, A ;
MIHAILESCU, IN .
JOURNAL OF APPLIED PHYSICS, 1995, 77 (07) :2928-2936
[10]   LASER ABLATION DEPOSITION OF TIN FILMS [J].
KOOLS, JCS ;
NILLESEN, CJCM ;
BRONGERSMA, SH ;
VANDERIET, E ;
DIELEMAN, J .
JOURNAL OF VACUUM SCIENCE & TECHNOLOGY A-VACUUM SURFACES AND FILMS, 1992, 10 (04) :1809-1814