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Mechanism of fine ripple formation on surfaces of (semi)transparent materials via a half-wavelength cavity feedback

机译:通过半波长腔反馈在(半)透明材料表面上形成细小的波纹的机理

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摘要

The mechanism of the fine ripples, perpendicular to laser polarization, on the surface of (semi)transparent materials with period smaller than the vacuum wavelength, λ, of the incident radiation is proposed and experimentally validated. The sphere-to-plane transformation of nanoplasma bubbles responsible for the in-bulk ripples accounts for the fine ripples on the surface of dielectrics and semiconductors. The mechanism is demonstrated for 4H:SiC and sapphire surfaces using 800 nm/150 fs and 1030 nm/300 fs laser pulses. The ripples are pinned to the smallest possible standing wave cavity inside material of refractive index n. This defines the corresponding period, Λ = (λ)/2, of a light standing wave with intensity, E~2, at the maxima of which surface ablation occurs. The mechanism accounts for the fine ripples at the breakdown conditions. Comparison with ripples recorded on different materials and via other mechanisms using femtosecond pulses is presented and application potential is discussed.
机译:提出并通过实验验证了周期短于入射辐射的真空波长λ的(半)透明材料表面上垂直于激光偏振的细波纹的机理。导致体内波纹的纳米等离子体气泡的球面到平面转换解释了电介质和半导体表面上的细小波纹。使用800 nm / 150 fs和1030 nm / 300 fs激光脉冲对4H:SiC和蓝宝石表面进行了演示。波纹被固定在折射率为n的材料内部最小的驻波腔中。这就定义了强度为E〜2的光驻波的相应周期Λ=(λ/ n)/ 2,在该周期发生表面烧蚀的最大值。该机制解决了击穿条件下的细微波动。提出了与飞秒脉冲在不同材料上以及通过其他机制记录的纹波的比较,并讨论了其应用潜力。

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