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Femtosecond laser shockwave peening ablation in liquids for hierarchical micro/nanostructuring of brittle silicon and its biological application

机译:飞秒激光冲击波在液体中的烧蚀,用于脆性硅的分级微/纳米结构及其生物学应用

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This paper presents a new technique,termed femtosecond laser shock peening ablation in liquids(fs-LSPAL),which can realize simultaneous crack micro/nanomanufacturing and hierarchical micro/nanolaser ablation,giving rise to the formation of diverse multiscale hierarchical structures,such as macroporous ratcheted structures and enéchelon microfringes decorated with parabolic nanoripples.Through analysis of surface morphologies,many phenomena have been confirmed to take place during fs-LSPAL,including enéchelon cracks,nanostriation,ripple densification,crack branching,and selective formation of high spatial frequency laser-induced periodic surface structures of 100–200 nm in period.At a high laser power of 700 mW,fs-LSPAL at scanning speeds of 0.2 mm s^-1 and 1 mm s^-1 enables the generation of height-fluctuated and height-homogeneous hierarchical structures,respectively.The height-fluctuated structures can be used to induce‘colony’aggregates of embryonic EB3 stem cells.At 200 mW,fs-LSPAL at 1 mm s^-1 is capable of producing homogeneous tilt macroporous structures with cracked structures interleaved among them,which are the synergistic effects of bubble-induced light refraction/reflection ablation and cracks.As shown in this paper,the conventional laser ablation technique integrated with its self-driven unconventional cracking under extreme conditions expands the horizons of extreme manufacturing and offers more opportunities for complex surface structuring,which can potentially be used for biological applications.
机译:本文介绍了一种新的技术,称为液体(FS-Lspal)的飞秒激光冲击喷丸消除,其可以实现同时裂纹微/纳米制造和分级微/纳米锥烧蚀,从而产生不同的多尺度等级结构,例如大孔用抛物线纳米骨装饰的棘轮结构和Enéchelon微谱系。在FS-Lspal期间,已经证实了许多现象的表面形态分析,包括Enéchelon裂缝,纳米分层,纹波致密化,裂纹分支和高空间频率激光的选择性形成在期间诱导的周期性表面结构为100-200nm。扫描速度为700mW的高激光功率,扫描速度为0.2mm ^ -1和1 mm s ^ -1,使得能够产生高度波动和高度 - 分别的分层结构。高度波动的结构可用于诱导胚胎EB3干细胞的化学凝结物。200 MW,FS-Lspal在1mm S ^ -1的情况下,能够用裂缝结构产生均匀的倾斜大孔结构,其中裂缝结构是气泡诱导的光折射/反射消融和裂缝的协同效应。在本文中所示,传统的激光烧蚀技术在极端条件下与其自动的非常规裂缝集成,扩大了极端制造的视野,为复杂的表面结构提供了更多机会,这可能适用于生物应用。

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