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Direct laser writing of metastable modifications in lithium niobate crystal with ultrashort laser pulses

机译:用超短激光脉冲直接激光写入铌酸锂晶体中的亚稳态修饰

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After the discovery that focused laser pulse is capable to locally change material's refractive index [1] it became possible to integrate various photonic devices or data directly into the volume of transparent material, usually using conventional Direct Laser Writing (DLW) techniques. Over the years this research field had rapidly gained momentum and many different photonic devices, passive and active, integrated in different kinds of material were demonstrated and tested. In majority of cases the change in refractive index comes from rearrangement (or damage) of materials lattice and usually remains permanent. However in particular cases, such as dynamic data recording, it would be beneficial to have possibility to manipulate over recorded information. This could be achieved in photorefractive crystals such as lithium niobate (LiNbO3). Laser-excited free carriers and bulk photovoltaic effect can cause uneven charge distribution in the material and through electro-optical effects this could lead to the refractive index change. Such data recording idea are not new and is used for decades in holographic recording techniques [2]. However, direct recording of metastable modifications with ultrashort laser pulses are quite scarcely investigated: it was demonstrated that it is possible to record rewritable bits in three-dimensional space of LiNbO3 crystal [3], also several integrated permanent photonic devices were demonstrated in such crystal [4,5], but many technological and physical questions still remains open.
机译:在发现聚焦的激光脉冲能够局部改变材料的折射率[1]之后,通常可以使用常规的直接激光写入(DLW)技术将各种光子设备或数据直接集成到透明材料的体积中。多年来,该研究领域迅速发展起来,并演示并测试了多种集成在不同材料中的无源和有源光子器件。在大多数情况下,折射率的变化来自材料晶格的重新排列(或损坏),并且通常保持永久不变。但是,在特定情况下,例如动态数据记录,可能有可能对记录的信息进行操作。这可以在光折射晶体(例如铌酸锂(LiNbO3))中实现。激光激发的自由载流子和整体光伏效应会导致材料中电荷分布不均,并且由于电光效应,这可能导致折射率变化。这种数据记录的想法并不是什么新鲜事,在全息记录技术中已经使用了数十年[2]。然而,几乎没有研究过用超短激光脉冲直接记录亚稳态修饰:证明可以在LiNbO3晶体的三维空间中记录可重写比特[3],并且在这种晶体中还展示了几种集成的永久光子器件。 [4,5],但是许多技术和物理问题仍然悬而未决。

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