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Infrared to ultraviolet measurements of two-photon absorption and n/sub 2/ in wide bandgap solids

机译:宽带隙固体中双光子吸收和n / sub 2 /的红外至紫外测量

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The bound electronic nonlinear refractive index, n/sub 2/, and two-photon absorption (2PA) coefficient, /spl beta/, are measured in a variety of inorganic dielectric solids at the four harmonics of the Nd:YAG laser using Z scan. The specific materials studied are: barium fluoride (BaF/sub 2/), calcite (CaCO/sub 3/), potassium bromide (KBr), lithium fluoride (LiF), magnesium fluoride (MgF/sub 2/), sapphire (Al/sub 2/O/sub 3/), a tellurite glass (75%TeO/sub 2/+20%ZnO+5%Na/sub 2/O) and fused silica (SiO/sub 2/). We also report n/sub 2/ and /spl beta/ in three second-order, /spl chi//sup (2)/, nonlinear crystals: potassium titanyl phosphate (KTiOPO/sub 4/ or KTP), lithium niobate (LiNbO/sub 3/), and /spl beta/-barium berate (/spl beta/-BaB/sub 2/O/sub 4/ or BBO). Nonlinear absorption or refraction can alter the wavelength conversion efficiency in these materials. The results of this study are compared to a simple two-parabolic band model originally developed to describe zincblende semiconductors. This model gives the bandgap energy (E/sub g/) scaling and spectrum of the change in absorption. The dispersion of nl as obtained from a Kramers-Kronig transformation of this absorption change scales as E/sub g//sup -1/. The agreement of this theory to data for semiconductors was excellent. However, as could be expected, the agreement for these wide bandgap materials is not as good, although general trends such as increasing nonlinearity with decreasing bandgap energy can be seen.
机译:使用Z扫描,在Nd:YAG激光的四个谐波下,在各种无机介电固体中测量结合的电子非线性折射率n / sub 2 /和双光子吸收(2PA)系数/ spl beta /。 。研究的特定材料为:氟化钡(BaF / sub 2 /),方解石(CaCO / sub 3 /),溴化钾(KBr),氟化锂(LiF),氟化镁(MgF / sub 2 /),蓝宝石(Al / sub 2 / O / sub 3 /),碲酸盐玻璃(75%TeO / sub 2 / + 20%ZnO + 5%Na / sub 2 / O)和熔融石英(SiO / sub 2 /)。我们还报告了n / sub 2 /和/ spl beta /在三个二阶,/ spl chi // sup(2)/非线性晶体中的作用:钛氧基磷酸钾(KTiOPO / sub 4 /或KTP),铌酸锂(LiNbO / sub 3 /)和/ spl beta /-钡酸钡(/ spl beta / -BaB / sub 2 / O / sub 4 /或BBO)。非线性吸收或折射会改变这些材料的波长转换效率。这项研究的结果与最初为描述闪锌矿半导体而开发的简单两抛物线能带模型进行了比较。该模型给出了带隙能量(E / sub g /)的缩放比例和吸收变化的频谱。从该吸收变化的Kramers-Kronig变换获得的nl分散度按E / sub g // sup -1缩放。该理论与半导体数据的一致性非常好。但是,可以预见的是,尽管可以看到诸如宽带非线性随着带隙能量减小而增加的总体趋势,但这些宽带隙材料的一致性并不好。

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