GAIN SCALING RELATIONSHIPS FOR NE-LIKE GE SLAB TARGETS

被引:35
作者
NEELY, D
LEWIS, CLS
ONEILL, DM
UHOMOIBHI, JO
KEY, MH
ROSE, SJ
TALLENTS, GJ
RAMSDEN, SA
机构
[1] RUTHERFORD APPLETON LAB,DIV LASER,DIDCOT OX11 0QX,OXON,ENGLAND
[2] UNIV ESSEX,DEPT PHYS,COLCHESTER CO4 3SQ,ESSEX,ENGLAND
[3] UNIV HULL,DEPT APPL PHYS,HULL HU6 7RX,N HUMBERSIDE,ENGLAND
[4] UNIV YORK,DEPT PHYS,YORK YO1 5DD,N YORKSHIRE,ENGLAND
关键词
D O I
10.1016/0030-4018(92)90465-4
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
The gain coefficient of the strongest 3p --> 3s, J = 2 --> 1 lasing transition at 23.6 nm in the Ne-like Ge collisional excitation scheme has been measured, using the fundamental wavelength from a Nd:glass laser (1.06-mu-m), for a range of incident intensities on massive stripe targets up to 2.2 cm in length. From a threshold incident laser intensity of approximately 6 x 10(12) W/cm2, the gain coefficient rises to approximately 4.5 cm-1 for an irradiation intensity of approximately 2.5 x 10(13) W/cm2, tending towards still higher gain coefficients at higher incident intensities. For targets of maximum length, a gain-length product gL almost-equal-to 10 was reached with a resultant output power at 23.6 nm estimated to be at the approximately kW level. The beam divergence decreased with length to a minimum of approximately 7 mrad but no significant trend in beam pointing with plasma length was observed. From the trend in the gain coefficient, it appears that for a fixed energy laser irradiating a approximately 100-mu-m wide slab targets, an incident intensity of I(i) approximately 1.2 x 10(13) W/cm2 represents an optimum working level, assuming that plasma length is not limited by refractive effects. In addition to the usual valence electron excited 3p --> 3s transitions, the gain coefficient for the core excited 1s(2)2s2p(6)3d --> 1s(2)2s2p(6)3p transition at 19.9 nm has been measured to be approximately 1.5 cm-1 for an incident irradiance of approximately 2.5 x 10(13) W/cm2.
引用
收藏
页码:231 / 236
页数:6
相关论文
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