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Scan speed and fluence effects in femtosecond laser induced micro/nano-structures on the surface of fused silica

机译:在Femtosecond激光诱导的微/纳米结构上扫描速度和注释效应在熔融二氧化硅表面上的微/纳米结构

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摘要

The influence of scan speed and fluence on the formation of micro/nano-structures were explored under 800 nm, 35 femtosecond (fs) laser irradiation. Surface morphology, roughness, and laser-induced defects of prepared samples were characterized. The antireflection property and wettability of laser treated samples were also tested and compared with that of original fused silica. Results showed that the laser irradiated structures included melt zone, nanofibers, laser-induced periodic surface structures (LIPSS), and fluffy structures. At a fix scan speed, high-spatial-frequency LIPSS (HFSL) were observed in the low fluence region. A transition from HSFL to LSFL (low-spatial-frequency LIPSS) occurs when a critical fluence threshold is exceeded. Otherwise, the scan speed significantly influences the surface roughness and should be controlled carefully during the preparation process. The material structural modification in laser-irradiated fused silica surface was verified by the Raman spectra. The concentration of oxygen deficient centers (ODCs), and non-bridging oxygen hole centers (NBOHCs) increased after femtosecond laser irradiation by analyzing the photoluminescence. The laser irradiated surface has a better antireflection property in comparison with that of original fused silica, which may be due to the scattering and absorption of micro/nano structures. After laser treatment, the micro/nano structured fused silica presented super-hydrophilic property. The contact angle of water droplet decreases can be explained by Wenzel's model.
机译:在800nm,35 Femtosecond(FS)激光照射下,探讨了扫描速度和流量对微/纳米结构形成的影响。表征了表面形态,粗糙度和激光诱导的制备样品的缺陷。还测试了激光处理样品的抗反射性能和润湿性,并与原始熔融二氧化硅进行比较。结果表明,激光照射结构包括熔融区,纳米纤维,激光诱导的周期性表面结构(嘴唇)和蓬松的结构。在固定扫描速度下,在低通量区域中观察到高空间频率唇(HFS1)。当超出临界流量阈值时,会发生从HSFL到LSFL(低空间频率嘴唇)的转换。否则,扫描速度显着影响表面粗糙度,并且应在制备过程中仔细控制。拉曼光谱验证了激光辐照熔融二氧化硅表面的材料结构改性。通过分析光致发光,缺氧缺氧中心(ODC)和非桥接氧孔中心(NBOHCS)增加了缺氧氧孔中心(NBOHC)。与原始熔融二氧化硅相比,激光照射表面具有更好的抗反射性,这可能是由于微/纳米结构的散射和吸收。激光处理后,微/纳米结构熔融二氧化硅呈现超亲水性。 Wenzel的模型可以解释水滴的接触角减少。

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