• Opto-Electronic Advances
  • Vol. 4, Issue 12, 200036-1 (2021)
Long Chen, Kaiqiang Cao, Yanli Li, Jukun Liu, Shian Zhang, Donghai Feng, Zhenrong Sun, and Tianqing Jia*
DOI: 10.29026/oea.2021.200036 Cite this Article
Long Chen, Kaiqiang Cao, Yanli Li, Jukun Liu, Shian Zhang, Donghai Feng, Zhenrong Sun, Tianqing Jia. Large-area straight, regular periodic surface structures produced on fused silica by the interference of two femtosecond laser beams through cylindrical lens[J]. Opto-Electronic Advances, 2021, 4(12): 200036-1 Copy Citation Text show less
References

[1] Omnidirectional iridescence via cylindrically-polarized femtosecond laser processing. Opto-Electron Adv, 3, 190035(2020).

[2] Direct laser interference patterning of nonvolatile magnetic nanostructures in Fe60Al40 alloy via disorder-induced ferromagnetism. Opto-Electron Adv, 3, 190027(2020).

[3] Modification of surface properties of solids by femtosecond LIPSS writing: comparative studies on silicon and stainless steel. Appl Phys A, 123, 725(2017).

[4] Origin of laser-induced near-subwavelength ripples: interference between surface plasmons and incident laser. ACS Nano, 3, 4062-4070(2009).

[5] Hierarchical microstructures with high spatial frequency laser induced periodic surface structures possessing different orientations created by femtosecond laser ablation of silicon in liquids. Opto-Electron Adv, 2, 190002(2019).

[6] Ultrafast manipulation of self-assembled form birefringence in glass. Adv Mater, 22, 4039-4043(2010).

[7] Femtosecond laser-induced periodic surface structures on silica. J Appl Phys, 112, 014901(2012).

[8] Bio-inspired micro-nano structured surface with structural color and anisotropic wettability on Cu substrate. Appl Surf Sci, 379, 230-237(2016).

[9] Large area metal micro-/nano-groove arrays with both structural color and anisotropic wetting fabricated by one-step focused laser interference lithography. Nanoscale, 11, 4803-4810(2019).

[10] Controlled nanostructrures formation by ultra fast laser pulses for color marking. Opt Express, 18, 2913-2924(2010).

[11] Short and long term surface chemistry and wetting behaviour of stainless steel with 1D and 2D periodic structures induced by bursts of femtosecond laser pulses. Appl Surf Sci, 494, 1055-1065(2019).

[12] Creating superhydrophobic and antibacterial surfaces on gold by femtosecond laser pulses. Appl Surf Sci, 506, 144952(2020).

[13] Form-birefringence in ITO thin films engineered by ultrafast laser nanostructuring. ACS Photonics, 4, 2944-2951(2017).

[14] Tailored surface birefringence by femtosecond laser assisted wet etching. Opt Express, 23, 1428-1437(2015).

[15] Giant birefringence and dichroism induced by ultrafast laser pulses in hydrogenated amorphous silicon. Appl Phys Lett, 106, 171106(2015).

[16] Subwavelength ripples adjustment based on electron dynamics control by using shaped ultrafast laser pulse trains. Opt Express, 20, 21505-21511(2012).

[17] Experimental study on 800 nm femtosecond laser ablation of fused silica in air and vacuum. Nucl Instrum Meth B, 385, 46-50(2016).

[18] Mechanism of nanograting formation on the surface of fused silica. Opt Express, 20, 4389-4396(2012).

[19] Large-area, uniform, high-spatial-frequency ripples generated on silicon using a nanojoule-femtosecond laser at high repetition rate. Opt Lett, 36, 229-231(2011).

[20] Laser mirror damage in germanium at 10.6 μm. Appl Phys Lett, 23, 598-600(1973).

[21] Laser-induced periodic surface structure. I. Theory. Phys Rev B, 27, 1141-1154(1983).

[22] Structure formation on the surface of indium phosphide irradiated by femtosecond laser pulses. J Appl Phys, 97, 013538(2005).

[23] Origin of periodicity in nanostructuring on thin film surfaces ablated with femtosecond laser pulses. Opt Express, 16, 16265-16271(2008).

[24] On the role of surface plasmon polaritons in the formation of laser-induced periodic surface structures upon irradiation of silicon by femtosecond-laser pulses. J Appl Phys, 106, 104910(2009).

[25] Ultrafast electron dynamics manipulation of laser induced periodic ripples via a train of shaped pulses. Laser Phys Lett, 10, 026003(2013).

[26] Subwavelength ripple formation on the surfaces of compound semiconductors irradiated with femtosecond laser pulses. Appl Phys Lett, 82, 4462-4464(2003).

[27] Formation of nanogratings on the surface of a ZnSe crystal irradiated by femtosecond laser pulses. Phys Rev B, 72, 125429(2005).

[28] Self-organized nanogratings in glass irradiated by ultrashort light pulses. Phys Rev Lett, 91, 247405(2003).

[29] Ripples revisited: non-classical morphology at the bottom of femtosecond laser ablation craters in transparent dielectrics. Appl Surf Sci, 197–198, 891-895(2002).

[30] Maskless formation of uniform subwavelength periodic surface structures by double temporally-delayed femtosecond laser beams. Appl Surf Sci, 471, 516-520(2019).

[31] Fabrication of 150 nm period grating in fused silica by two-beam interferometric laser induced backside wet etching method. Opt Express, 14, 8354-8359(2006).

[32] On the interplay of DLIP and LIPSS upon ultra-short laser pulse irradiation. Materials, 12, 1018(2019).

[33] Polarization-selective etching in femtosecond laser-assisted microfluidic channel fabrication in fused silica. Opt Lett, 30, 1867-1869(2005).

[34] Laser-induced front side etching of fused silica with femtosecond laser radiation using thin metal layers. Appl Surf Sci, 278, 255-258(2013).

[35] Etching-assisted femtosecond laser modification of hard materials. Opto-Electron Adv, 2, 190021(2019).

[36] A practical technique for the generation of highly uniform LIPSS. Appl Surf Sci, 313, 123-131(2014).

[37] Massively Engineering the wettability of titanium by tuning nanostructures and roughness via laser ablation. J Phys Chem C, 123, 30382-30388(2019).

[38] Wettability analysis of water on metal/semiconductor phases selectively structured with femtosecond laser-induced periodic surface structures. Langmuir, 35, 14990-14998(2019).

[39] Ultraviolet-infrared femtosecond laser-induced damage in fused silica and CaF2 crystals. Phys Rev B, 73, 054105(2006).

[40] Microscopic mechanisms of ablation and micromachining of dielectrics by using femtosecond lasers. Appl Phys Lett, 82, 4382-4384(2003).

[41] Surface birefringence of regular periodic surface structures produced on glass coated with an indium tin oxide film using a low-fluence femtosecond laser through a cylindrical lens. Opt Express, 28, 30094-30106(2020).

[42] Femtosecond laser-induced periodic surface structure on fused silica surface. Optik, 127, 1171-1175(2016).

[43] Laser induced periodic surface structures induced by surface plasmons coupled via roughness. Appl Surf Sci, 302, 118-123(2014).

[44] Optical absorption of two dimensional periodic microstructures on ZnO crystal fabricated by the interference of two femtosecond laser beams. Opt Express, 18, 14401-14408(2010).

[45] Selective excitation on tip-enhanced Raman spectroscopy by pulse shaping femtosecond laser. Plasmonics, 14, 523-531(2019).

[46] On modeling of plasmon-induced enhancement of the efficiency of solar cells modified by metallic nano-particles. Nanomaterials, 9, 3(2019).

[47] Scan speed and fluence effects in femtosecond laser induced micro/nano-structures on the surface of fused silica. J Non-Cryst Solids, 492, 56-62(2018).

Long Chen, Kaiqiang Cao, Yanli Li, Jukun Liu, Shian Zhang, Donghai Feng, Zhenrong Sun, Tianqing Jia. Large-area straight, regular periodic surface structures produced on fused silica by the interference of two femtosecond laser beams through cylindrical lens[J]. Opto-Electronic Advances, 2021, 4(12): 200036-1
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