Aspects for efficient wide spectral band THz generation via CO2 laser down conversion

Y. Panchenko, Y. Andreev, G. Lanskii, V. Losev, D. Lubenko
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Abstract

Detailed model study of THz generation by CO2 laser down-conversion in pure and solid solution crystals GaSe1-xSx is carried out for the first time. Both forward and backward collinear interactions of common (eo-e, oe-e, oe-o, oo-e, ee-o) and original (ee-e, oo-o) types are considered. Possibility of realization, phase matching angles and figure of merits are estimated for line mixing within 9 μm and 10 μm emission bands, as well between them. Dispersion properties of o- and e-wave refractive indices and absorption coefficients for GaSe, GaS and GaSe1-xSx crystals were preliminary measured by THz-TDS, approximated in the equation form and then used in the study. Estimated results are presented in the form of 3-D figures that are suitable for rapid analyses of DFG parameters. The most efficient type of interaction is eo-o type. Optimally doped (x = 0.09-0.13) GaSe1-xSx crystals are from 4 to 5 times more efficient at limit pump intensity than not doped GaSe crystals.
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利用CO2激光下转换高效产生宽波段太赫兹的几个方面
本文首次对纯晶体和固溶体晶体GaSe1-xSx中CO2激光下转换产生太赫兹进行了详细的模型研究。考虑了普通类型(eo-e, oe-e, oe-o, oo-e, ee-o)和原始类型(ee-e, oo-o)的前向和后向共线相互作用。估计了9 μm和10 μm发射波段内以及两者之间线混合的实现可能性、相位匹配角和优点图。利用太赫兹- tds初步测量了GaSe、GaS和GaSe1-xSx晶体的o波和e波折射率和吸收系数的色散特性,并将其近似成方程形式用于研究。估计结果以三维图形的形式呈现,适合于快速分析DFG参数。最有效的交互类型是eo-o类型。最佳掺杂(x = 0.09-0.13)的GaSe1-xSx晶体在极限泵浦强度下的效率是未掺杂GaSe晶体的4 - 5倍。
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