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Investigation of parameters governing damage resistance of nematic liquid crystals for high-power or peak-intensity laser applications

机译:用于高功率或峰强激光应用的向列液晶损伤性参数的研究

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We investigate the damage resistance of saturated and unsaturated liquid crystals (LC's) under a wide range of laser excitation conditions, including 1053-nm pulse durations between 600?fs and 1.5?ns and nanosecond pulse excitation at 351?nm and 532?nm. This study explores the relationship between the LC's resistance to laser-induced breakdown (damage) and the electronic structure (π-electron delocalization) of the constituent molecules. The laser-induced damage threshold at all wavelengths and pulse durations was consistently higher in saturated materials than in their unsaturated counterparts. The wavelength's dependence in the results suggests that the energy coupling process that leads to laser-induced breakdown is governed by the energy separation between the ground state and the first and second excited states, while the pulse duration's dependence in the results reveals the important role of electron relaxation between the excited states. A qualitative description was developed to interpret the experimental observations.
机译:我们在广泛的激光激发条件下研究饱和和不饱和液晶(LC)的损伤阻力,包括在351Ω·Nm和532Ω·nm之间的600℃和1.5℃和纳秒脉冲激发的1053-nm脉冲持续时间。该研究探讨了LC对激光诱导的击穿(损伤)的抵抗力和构成分子的电子结构(π电子移植)之间的关系。在所有波长和脉冲持续时间的激光诱导的损伤阈值饱和材料在饱和物质中始终高于其不饱和对应物。波长对结果的依赖表明,导致激光诱导的击穿的能量耦合过程受到地面状态和第一和第二激发态之间的能量分离的管辖,而脉冲持续时间在结果中的依赖性揭示了重要作用兴奋状态之间的电子放松。开发了一个定性描述以解释实验观察。

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