Laser Technology, Volume. 47, Issue 4, 513(2023)

Experimental investigation on 266 nm nanosecond laser drilling of PS

QI Litao1、*, LI Cuntao2, and LIU Fengcong2
Author Affiliations
  • 1[in Chinese]
  • 2[in Chinese]
  • show less
    References(18)

    [1] [1] LI E D, YANG Z P, GUAN Ch L, et al. Wavefront control technology in the field of inertial confinement fusion in China[J]. Opto-Electronic Engineering, 2020, 47(10): 42-52(in Chinese).

    [2] [2] WANG F,LI Y L,GUAN Z Y, et al. Application of compression sensing technology in laser inertial confinement fusion research[J]. High Power Laser and Particle Beam, 2022, 34(3): 127-135(in Chinese).

    [3] [3] YALUKOVA O, SRADY I. Investigation of interaction mechanisms in laser drilling of thermoplastic and thermoset polymers using diffe-rent wavelengths[J]. Composites Science and Technology, 2006, 66(10): 1289-1296.

    [4] [4] TOKAREV V N. Mechanism of laser drilling superhigh-aspect-ratio holes in polymers[J]. Quantum Eletronics,2006, 36(7): 624-637.

    [5] [5] HOU C J, YANG L J, WANG Y, et al. Research on laser micro machining polystyrene material[J].Advanced Materials Research, 2012, 628: 83-89.

    [6] [6] YAN X G, CHEN T. Comparison of 193 nm and 248 nm wavelength excimer lasers on glass and polymer etching properties[J]. Electromechining & Mould, 2016(4): 30-34(in Chinese).

    [7] [7] WANG J, ZHOU L, FU H T, et al. Polystyrene ultraviolet laser punching test study[J]. Electromechining & Mould, 2019(4): 54-57(in Chinese).

    [8] [8] GU J, YE X, FAN Zh M, et al. Research progress on the preparation of biomimetic superhydrophobic surfaces by laser etching[J]. Laser Technology, 2019, 43(4): 57-63(in Chinese).

    [9] [9] QI L T, LIU W H. Microstructure processing of 266nm UV solid-state laser on silicon carbide wafers[J]. Journal of Heilongjiang University of Science and Technology, 2017, 27(2): 176-180(in Chinese).

    [10] [10] QI L T, LIU F C, ZHANG Y D. Experimental investigation on 266nm ultraviolet solid-state laser cutting of carbon fiber reinforced plastics[J]. Laser Technology, 2022, 46(3): 402-407.

    [13] [13] LIU S Y, CHEN M A, CHENG N. Preparation and corrosion resistance of polystyrene film on the surface of 2519 lead alloy[J]. Hot Working Technology, 2014, 43(6):99-102(in Chinese).

    [14] [14] WU M N, SONG Ch W, HUANG Y H. Causes of defect formation in femtosecond laser processing polystyrene[J]. Laser & Infrared, 2017, 47(9): 1089-1095(in Chinese).

    [15] [15] WANG B, WANG X C, ZHENG H Y, et al. Thermal effect of femtosecond laser polystyrene processing[J]. Optics & Laser Technology, 2019, 117: 244-250.

    [16] [16] YONG J, CHEN F, YANG Q, et al. Rapid fabrication of large-area concave micro lens arrays on PDMS by a femtosecond laser[J]. ACS Applied Materials & Interfaces, 2013, 5(19): 9382-9385.

    [17] [17] LI X, GUAN Y. Theoretical fundamentals of short pulse laser-metal interaction: A review[J]. Nanotechnology and Precision Engineering, 2020, 3(3): 105-125.

    [18] [18] LI N L, JIN X, WANG G Y, et al. Numerical study of the process by which laser ablation polymers generate thrust under vacuum[J]. Journal of the College of Equipment Command Technology, 2010, 21(6): 124-127(in Chinese).

    Tools

    Get Citation

    Copy Citation Text

    QI Litao, LI Cuntao, LIU Fengcong. Experimental investigation on 266 nm nanosecond laser drilling of PS[J]. Laser Technology, 2023, 47(4): 513

    Download Citation

    EndNote(RIS)BibTexPlain Text
    Save article for my favorites
    Paper Information

    Category:

    Received: Jun. 13, 2022

    Accepted: --

    Published Online: Dec. 11, 2023

    The Author Email: QI Litao (qltlx@hotmail.com)

    DOI:10.7510/jgjs.issn.1001-3806.2023.04.011

    Topics