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Tubular filamentation for laser material processing

机译:管状细丝用于激光材料加工

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摘要

An open challenge in the important field of femtosecond laser material processing is the controlled internal structuring of dielectric materials. Although the availability of high energy high repetition rate femtosecond lasers has led to many advances in this field, writing structures within transparent dielectrics at intensities exceeding 1013 W/cm2 has remained difficult as it is associated with significant nonlinear spatial distortion. This letter reports the existence of a new propagation regime for femtosecond pulses at high power that overcomes this challenge, associated with the generation of a hollow uniform and intense light tube that remains propagation invariant even at intensities associated with dense plasma formation. This regime is seeded from higher order nondiffracting Bessel beams, which carry an optical vortex charge. Numerical simulations are quantitatively confirmed by experiments where a novel experimental approach allows direct imaging of the 3D fluence distribution within transparent solids. We also analyze the transitions to other propagation regimes in near and far fields. We demonstrate how the generation of plasma in this tubular geometry can lead to applications in ultrafast laser material processing in terms of single shot index writing, and discuss how it opens important perspectives for material compression and filamentation guiding in atmosphere.
机译:飞秒激光材料加工的重要领域面临的一个开放挑战是电介质材料的受控内部结构。尽管高能量高重复率飞秒激光器的使用已在该领域取得了许多进步,但仍在透明电介质中以超过10 13 W / cm 2 的强度写入结构这很困难,因为它与明显的非线性空间失真有关。这封信报道了飞秒脉冲在高功率下已经克服了这一挑战的新传播机制的存在,这与空心均匀而强烈的光管的产生有关,即使在与密集等离子体形成有关的强度下,该光管仍保持传播不变。该方案是从带有光学涡旋电荷的高阶非衍射贝塞尔光束中获得的。数值模拟已通过实验进行了定量验证,其中一种新颖的实验方法可以对透明固体中的3D注量分布进行直接成像。我们还分析了近场和远场向其他传播方式的过渡。我们通过单次散粒指数写法演示了这种管状几何形状中等离子体的产生如何导致超快激光材料加工中的应用,并讨论了它如何为大气中的材料压缩和细丝引导打开重要的视角。

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