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基于空间光调制器的超快激光加工原理及应用(下)
来源: | 作者:topphotonics | 发布时间: 2020-09-21 | 4803 次浏览 | 分享到:

[3]Satoshi K, Hong-Bo S, Tomokazu T ,et al. Finer features for functional microdevices - Micromachines can be created with higher resolution using two-photon absorption[J]. Nature, 2001, 412: 697–698.
[4]Friedman N J, Palanker D V., Schuele G ,et al. Femtosecond laser capsulotomy[J]. Journal of Cataract & Refractive Surgery, ASCRS and ESCRS, 2011, 37(7): 1189–1198.[5]Drevinskas R, Beresna M, Zhang J ,et al. Ultrafast Laser-Induced Metasurfaces for Geometric Phase Manipulation[J]. Advanced Optical Materials, 2017, 5(1).
[6]Liao Y, Song J, Li E ,et al. Rapid prototyping of three-dimensional microfluidic mixers in glass by femtosecond laser direct writing[J]. Lab on a Chip, 2012, 12(4): 746–749.
[7]Parthenopoulos D A, Renetzepis P M. Three-Dimensional Optical Storage Memory[J]. Science, 1989, 245: 843.
[8]Yong J, Chen F, Yang Q ,et al. Bioinspired underwater superoleophobic surface with ultralow oil-adhesion achieved by femtosecond laser microfabrication[J]. J. Mater. Chem. A, 2014, 2(23): 8790–8795.
[9]Huang X, Guo Q, Yang D ,et al. Reversible 3D laser printing of perovskite quantum dots inside a transparent medium[J]. Nature Photonics, 2019.
[10]Kim D, Keesling A, Omran A ,et al. Large-scale uniform optical focus array generation with a phase spatial light modulator[J]. Optics Letters, 2019, 44(12): 3178.
[11]Zhang C, Hu Y, Du W ,et al. Optimized holographic femtosecond laser patterning method towards rapid integration of high-quality functional devices in microchannels[J]. Scientific Reports, Nature Publishing Group, 2016, 6(August): 1–9.
[12]Yang D, Liu L, Gong Q ,et al. Rapid Two-Photon Polymerization of an Arbitrary 3D Microstructure with 3D Focal Field Engineering[J]. Macromolecular Rapid Communications, 2019, 40(8).
[13]Allegre O J, Jin Y, Perrie W ,et al. Complete wavefront and polarization control for ultrashort-pulse laser microprocessing[J]. Optics Express, 2013, 21(18): 21198.
[14]Gauthier G, Lenton I, McKay Parry N ,et al. Direct imaging of a digital-micromirror device for configurable microscopic optical potentials[J]. Optica, 2016, 3(10): 1136.
[15]Dudley D, Duncan W M, Slaughter J. Emerging digital micromirror device (DMD) applications[A]. H. Urey. MOEMS Display and Imaging Systems[C]. 2003, 4985(Dmd): 14.
[16]Zhang Z, You Z, Chu D. Fundamentals of phase-only liquid crystal on silicon (LCOS) devices[J]. Light: Science & Applications, 2014, 3(10): e213–e213.
[17]Reichelt S. Spatially resolved phase-response calibration of liquid-crystal-based spatial light modulators[J]. Applied Optics, 2013, 52(12): 2610.
[18]Cotter L K, Drabik T J, Dillon R J ,et al. Ferroelectric-liquid-crystal/silicon-integrated-circuit spatial light modulator[J]. Optics Letters, 1990, 15(5): 291.
[19]R. W. Gerchberg, W. O.Saxton. A Practical Algorithm for the Determination of Phase from Image and Diffraction Plane Pictures[J]. Optik, 1972, 35: 237–246.
[20]Soifer V A. Iteractive Methods For Diffractive Optical Elements Computation[M]. Iterative Methods for Diffractive Optical Elements Computation, CRC Press, 2014.
[21]Dufresne E R, Spalding G C, Dearing M T ,et al. Computer-generated holographic optical tweezer arrays[J]. Review of Scientific Instruments, 2001, 72(3): 1810.