Opto-Electronic Advances, Volume. 4, Issue 12, 200036-1(2021)

Large-area straight, regular periodic surface structures produced on fused silica by the interference of two femtosecond laser beams through cylindrical lens

Long Chen, Kaiqiang Cao, Yanli Li, Jukun Liu, Shian Zhang, Donghai Feng, Zhenrong Sun, and Tianqing Jia*
References(47)

[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).

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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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Paper Information

Category: Original Article

Received: Aug. 11, 2020

Accepted: Oct. 31, 2020

Published Online: Mar. 16, 2022

The Author Email: Jia Tianqing (tqjia@phy.ecnu.edu.cn)

DOI:10.29026/oea.2021.200036

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