[1] MacLeod P, Partnership P F[M]. A review of flexible circuit technology and its applications(2002).
[2] Edqvist E, Snis N, Mohr R C et al. Evaluation of building technology for mass producible millimetre-sized robots using flexible printed circuit boards[J]. Journal of Micromechanics and Microengineering, 19, 075011(2009).
[3] Song R G, Zhao X, Wang Z et al. Sandwiched graphene clad laminate: a binder-free flexible printed circuit board for 5G antenna application[J]. Advanced Engineering Materials, 22, 2000451(2020).
[4] Phung T H, Jeong J, Gafurov A N et al. Hybrid fabrication of LED matrix display on multilayer flexible printed circuit board[J]. Flexible and Printed Electronics, 6, 024001(2021).
[5] Zhang L. Femtosecond parallel processing method and its application in FPC micro-hole processing[D], 10-21(2018).
[6] Zhang F, Duan J, Zeng X Y et al. Study of blind holes drilling on flexible circuit board using 355 nm UV laser[J]. Chinese Journal of Lasers, 36, 3143-3148(2009).
[7] Fu X, Zhang F, Jiang M et al. Study on technology and quality of etching copper clad laminate with 1064 nm and 355 nm laser[J]. Laser Technology, 38, 435-440(2014).
[8] Ni C, Wang M D, Shi K M et al. Study on optimization of orthogonal test for femtosecond laser etching copper clad laminate[J]. Applied Laser, 38, 787-793(2018).
[9] Shi K M, Wang M D, Chen T Y et al. Study on technology and quality of etching copper clad laminate with femtosecond laser[J]. Applied Laser, 38, 81-88(2018).
[10] Zhang X, Liu K, Wang M D et al. Etching technology for copper-clad laminates based on femtosecond laser[J]. Acta Optica Sinica, 39, 1214003(2019).
[11] Shin B S, Oh J Y, Sohn H. Theoretical and experimental investigations into laser ablation of polyimide and copper films with 355-nm Nd∶ YVO4 laser[J]. Journal of Materials Processing Technology, 187/188, 260-263(2007).
[12] Bäuerle D[M]. Laser processing and chemistry, 291-292(2000).
[13] Shah J. Coherent spectroscopy of semiconductors[M]. Ultrafast spectroscopy of semiconductors and semiconductor nanostructures. Springer series in solid-state sciences, 115, 27-131(1999).
[14] A Z W, Wu Y, Xiao Y et al. Research progresses of process technology in ultrafast laser micro-hole drilling[J]. Chinese Journal of Lasers, 48, 0802013(2021).
[15] Xiong H. Nanosecond laser drilling of thin aluminum sheets[D], 6-11(2016).
[16] Yung K C, Zeng D W, Yue T M. XPS investigation of Upilex-S polyimide ablated by 355 nm Nd∶ YAG laser irradiation[J]. Applied Surface Science, 173, 193-202(2001).
[17] von der Linde D, Sokolowski-Tinten K, Bialkowski J. Laser-solid interaction in the femtosecond time regime[J]. Applied Surface Science, 109/110, 1-10(1997).
[18] Chichkov B N, Momma C, Nolte S et al. Femtosecond, picosecond and nanosecond laser ablation of solids[J]. Applied Physics A, 63, 109-115(1996).
[19] Li J Q, Yan J F, Li X et al. Research advancement on ultrafast laser microprocessing of transparent dielectrics[J]. Chinese Journal of Lasers, 48, 0202019(2021).
[20] Cao J J, Xiu S Y, Xu J K et al. Fabrication of bioinspired functional micro-nano structures by femtosecond laser and their applications[J]. Chinese Journal of Lasers, 49, 1002702(2022).
[21] Wang H J, Li Y L, Li P. Orthogonal experimental research on laser cutting AZ31B magnesium-aluminum alloys[J]. Laser & Optoelectronics Progress, 55, 101405(2018).