J. Eur. Opt. Society-Rapid Publ. 22, 46( 2026) 463
Opt. Lett. 40, 2870( 2015). https:// doi. org / 10.1364 / ol. 40.002870.
26 Gunnar RMK, Bernd E, Laser-induced damage threshold of camera sensors and microoptoelectromechanical systems. Opt. Eng. 56( 2017). https:// doi. org / 10.1117 / 1. OE. 56.3. 034108.
27 Wellershoff SS, Hohlfeld J, Güdde J, Matthias E, The role of electron – phonon coupling in femtosecond laser damage of metals. Appl. Phys. A Mater. Sci. Proc. 69, S99 – S107( 1999). https:// doi. org / 10.1007 / s003399900305.
28 Schwarz B, Ritt G, Eberle B, Impact of threshold assessment methods in laser-induced damage measurements using the examples of CCD, CMOS, and DMD. Appl. Opt. 60, F39( 2021). https:// doi. org / 10.1364 / ao. 423791.
29 Perrie W, Gill M, Robinson G, et al., Femtosecond laser micro-structuring of aluminium under helium. Appl. Surf. Sci. 230, 50 – 59( 2004). https:// doi. org / 10.1016 / j. apsusc. 2003.12.035.
30 Bashir S, Rafique MS, Husinsky W, Identification of nonthermal and thermal processes in femtosecond laser-ablated aluminum. Radiat. Effects Def. Solids 168, 902 – 911( 2013). https:// doi. org / 10.1080 / 10420150.2013.784911.
31 Van Kessel PF, Hornbeck LJ, Meier RE, and Douglass MR, A MEMS-based projection display, Proc. IEEE, 86, 8( 1998). https:// doi. org / 10.1109 / 5.704274.
32 Texas Instruments. Digital micromirror device thermal considerations including pulsed optical sources: application note [ Internet ]. Dallas( TX): Texas Instruments; 2024 Jan. Technical report No. DLPA027B. Revised 2024 Apr [ cited 2025 Nov 28 ]. Available from: https:// www. ti. com / lit / an / dlpa027b / dlpa027b. pdf? ts = 1764273477795.
33 Stefan Nolte, in Ultrafast Lasers: Technology and Applications, edited by Fermann ME, Galvanauskas A, and Sucha G( Marcel Dekker, New York, 2003), pp. 376 – 379.
34 Zhang J, Chen Y, Hu M, Chen X, An improved threedimensional two-temperature model for multi-pulse femtosecond laser ablation of aluminum. J. Appl. Phys. 117,( 2015). https:// doi. org / 10.1063 / 1.4907990.
35 Jm L, Simple technique for measurements of pulsed gaussianbeam spot sizes. Opt. Lett. 7, 196( 1982). https:// doi. org / 10.1364 / ol. 7.000196.
36 Texas Instruments. DLP7000 DLP Ò 0.7 XGA 2 LVDS Type A DMD: technical datasheet [ Internet ]. Dallas( TX):
Texas Instruments;( 2012) Aug. Technical report No. DLPS029B. Updated 2023 Apr. Cited 2025 Nov 28. Available from: https:// www. ti. com / lit / ds / symlink / dlp7000. pdf.
37 Dudley D, Duncan WM, Slaughter JW Emerging Digital Micromirror Device( DMD) applications. Proc. SPIE.( 2003). https:// doi. org / 10.1117 / 12.480761.
38 Edmund Optics. Metallic mirror coatings: application note [ Internet ]. Barrington( NJ): Edmund Optics; n. d. [ cited 2025 Nov 28 ]. Available from: https:// www. edmundoptics.- com / knowledge-center / application-notes / optics / metallicmirror-coatings /.
39 Newport Corporation. The Effect of Dispersion on Ultrashort Pulses: application note [ Internet ]. Newport( CA): Newport Corporation; n. d. [ cited 2025 Nov 28 ]. Available from: https:// www. newport. com / n / the-effect-of-dispersion-onultrashort-pulses.
40 Sune S, Wolfgang Demtroder in Springer Handbook of Lasers and Optics, edited by Träger F, 2nd edn.( Springer, Berlin, 2012), pp. 1047 – 1056.
41 Siegman AE, in Lasers, edited by University Science Books, 1st edn.( University Science Books, Mill Valley, 1986), p. 807.
42 Mínguez-Vega G, Tajahuerce E, Fernández-Alonso M, Climent V, Lancis J, Caraquitena J, and Andrés P, Dispersioncompensated beam-splitting of femtosecond light pulses: wave optics analysis, Opt. Express 15, 278 – 288( 2007). https:// doi. org / 10.1364 / OE. 15.000278
43 Martínez-Cuenca R, Martínez-León L, Lancis J, et al., Highvisibility interference fringes with femtosecond laser radiation. Opt. Express 17, 23016( 2009). https:// doi. org / 10.1364 / OE. 17.023016.
44 Martínez-León L, Clemente P, Tajahuerce E, Mínguez-Vega G, Mendoza-Yero O, Fernández-Alonso M, Lancis J, Climent V, and Andrés P, Spatial-chirp compensation in dynamical holograms reconstructed with ultrafast lasers, Appl. Phys. Lett, 94,( 2009). https:// doi. org / 10.1063 / 1.3063047.
45 Edgar MP, Gibson GM, and Padgett MJ, Principles and prospects for single-pixel imaging, Nat. Photonics. 13, 13 – 20( 2019). https:// doi. org / 10.1038 / s41566-018-0300-7.
46 Armin MJL, Single-pixel computational imaging: application to fluorescence and diffuse optical imaging, thesis, Universitat Jaume I( 2024). https:// doi. org / 10.6035 / 14104.2024. 716126.