Wu Xiaojun, Zhou Chun, Huang Wenqian Ronny, Ahr Frederike, Kärtner Franz X
Opt Express. 2015 Nov 16;23(23):29729-37. doi: 10.1364/OE.23.029729.
Optical rectification with tilted pulse fronts in lithium niobate crystals is one of the most promising methods to generate terahertz (THz) radiation. In order to achieve higher optical-to-THz energy efficiency, it is necessary to cryogenically cool the crystal not only to decrease the linear phonon absorption for the generated THz wave but also to lengthen the effective interaction length between infrared pump pulses and THz waves. However, the refractive index of lithium niobate crystal at lower temperature is not the same as that at room temperature, resulting in the necessity to re-optimize or even re-build the tilted pulse front setup. Here, we performed a temperature dependent measurement of refractive index and absorption coefficient on a 6.0 mol% MgO-doped congruent lithium niobate wafer by using a THz time-domain spectrometer (THz-TDS). When the crystal temperature was decreased from 300 K to 50 K, the refractive index of the crystal in the extraordinary polarization decreased from 5.05 to 4.88 at 0.4 THz, resulting in ~1° change for the tilt angle inside the lithium niobate crystal. The angle of incidence on the grating for the tilted pulse front setup at 1030 nm with demagnification factor of -0.5 needs to be changed by 3°. The absorption coefficient decreased by 60% at 0.4 THz. These results are crucial for designing an optimum tilted pulse front setup based on lithium niobate crystals.
利用铌酸锂晶体中倾斜脉冲前沿进行光整流是产生太赫兹(THz)辐射最有前景的方法之一。为了实现更高的光到太赫兹能量效率,不仅需要对晶体进行低温冷却,以减少对所产生太赫兹波的线性声子吸收,还需要延长红外泵浦脉冲与太赫兹波之间的有效相互作用长度。然而,铌酸锂晶体在较低温度下的折射率与室温下不同,这就需要重新优化甚至重新构建倾斜脉冲前沿装置。在此,我们使用太赫兹时域光谱仪(THz-TDS)对一块掺有6.0 mol%氧化镁的同成分铌酸锂晶片进行了折射率和吸收系数的温度依赖性测量。当晶体温度从300 K降至50 K时,在0.4 THz下,晶体在非寻常偏振中的折射率从5.05降至4.88,导致铌酸锂晶体内的倾斜角变化约1°。对于放大倍数为-0.5的1030 nm倾斜脉冲前沿装置,在光栅上的入射角需要改变3°。在0.4 THz下,吸收系数下降了60%。这些结果对于基于铌酸锂晶体设计最佳倾斜脉冲前沿装置至关重要。