JEOS RP ISSN03 | Page 214

J. Eur. Opt. Society-Rapid Publ. 22, 21( 2026) 207
31 Trum CJ, Vogt C, Sitzberger S, Rascher R, Faehnle O, in Proceedings of the Fifth European Seminar on Precision Optics Manufacturing, Teisnach, 2018, edited by R. Rascher and C. Schopf( Proceedings Volume 10826, SPIE, 2018), p. 11. https:// doi. org / 10.1117 / 12.2318576.
32 Yin J, Bai Q, Haitjema H, Zhang B, Two-dimensional detection of subsurface damage in silicon wafers with polarized laser scattering, J. Mater. Process. Technol. 284, 116746( 2020). https:// doi. org / 10.1016 / j. jmatprotec. 2020.116746.
33 Liu J, Liu J, Liu C, Wang Y, 3D dark-field confocal microscopy for subsurface defects detection, Opt. Lett. 45, 660( 2020). https:// doi. org / 10.1364 / OL. 384487.
34 Miller PE, Suratwala TI, Wong LL, Feit MD, Menapace JA, Davis PJ, Steele RA., in Proceedings of the Boulder Damage Symposium XXXVII: Annual Symposium on Optical Materials for High Power Lasers, Boulder, 2005, edited by JE. Gregory, HG. Arthur, LL. Keith, R. Detlev, MJ. Soileau, JS. Christopher( Proceedings Volume 5991, SPIE 2005), p. 599101. https:// doi. org / 10.1117 / 12.638821.
35 Börret R, Wiedemann D, Kelm A, in Proceedings of the 58th Ilmenau Scientific Colloquium( Technical University of Ilmenau, Ilmenau, 2014). https:// nbn-resolving. org / urn: nbn: de: gbv: ilm1-2014iwk-199:0.
36 Cui Y, Wang C, Liu X, Wu Y, Li Z, Li R, He W, A review of subsurface damage detection methods for optical components, AIP Adv. 13,( 2023). https:// doi. org / 10.1063 / 5.0151498.
37 Frank S, Seiler M, Bliedtner J, Three-dimensional evaluation of subsurface damage in optical glasses with ground and polished surfaces using FF-OCT, Appl. Opt. 60, 2118( 2021). https:// doi. org / 10.1364 / AO. 413090.
38 Shen J, Liu S, Yi K, He H, Shao J, Fan Z, Subsurface damage in optical substrates, Optik 116, 288( 2005). https:// doi. org / 10.1016 / j. ijleo. 2005.02.002.
39 Lu W, Pei ZJ, Sun JG, Non-destructive evaluation methods for subsurface damage in silicon wafers: a literature review, IJMMM 2, 125( 2007). https:// doi. org / 10.1504 / IJMMM. 2007.012672.
40 Wang J, Li, YG, Han JH, Xu, Q, Guo, YB, Evaluating subsurface damage in optical glasses, J. Eur. Opt. Society-Rapid Publ. 6,( 2011). https:// doi. org / 10.1051 / jeos. 2011.11001.
41 Yin J, Bai Q, Zhang B, Methods for detection of subsurface damage: a review, Chin. J. Mech. Eng. 31,( 2018). https:// doi. org / 10.1186 / s10033-018-0229-2.
42 Frank S, Schwörer L, Alvan V, Hohmann P, Burger I, Jedamzik S, et al., in Proceedings of the Eleventh European Seminar on Precision Optics Manufacturing, Teisnach, 2024, edited by G. Fütterer, C. Wünsche, OW. Fähnle, H. Thieß and A. Haberl( Proceedings Volume 13221, SPIE, 2024), p. 5. https:// doi. org / 10.1117 / 12.3031491.
43 Frank S, Reichenbächer M, Seiler M, Arnold T, Bliedtner J, in Proceedings of the EOSAM 2023, Dijon, 2023( EPJ Web Conferences 287, Les Ulis, 2023), p. 5024. https:// doi. org / 10.1051 / epjconf / 202328705024.
44 Hu Y, Gao W, Detecting subsurface damage within glasses with polarization-sensitive optical coherence tomography, Opt. Laser Technol. 177, 111146( 2024). https:// doi. org / 10.1016 / j. optlastec. 2024.111146.
45 Ou L, He H, Wang F, Sun L, Yu J, Recent advances in the characterization of subsurface damage in optical materials, Materials( Basel) 18,( 2025). https:// doi. org / 10.3390 / ma18163883.
46 Thelemann D, Frank S, Schneider K, Henkel S, Schulze C, Bliedtner J, in Proceedings of the Twelfth European Seminar on Precision Optics Manufacturing, Teisnach, 2025, edited by G. Fütterer, C. Wünsche, OW. Fähnle, H. Thieß and A. Haberl( Proceedings Volume 13789, SPIE, 2025), p. 7. https:// doi. org / 10.1117 / 12.3075984.
47 Seiler M, Frank S, Thelemann D, Elies O, Teymori P, Bliedtner J, How laser material processing can benefit from OCT technology, Photonics Views 22, 52( 2025). https:// doi. org / 10.1002 / phvs. 202400037.
48 Nie J, Wang Y, Wang D, Ding Y, Zhou C, Wang J, et al., Method for extracting optical element information using optical coherence tomography, Sensors( Basel) 24, 6953( 2024). https:// doi. org / 10.3390 / s24216953.
49 Wang L, Fu R, Xu C, Xu M, Methods and applications of fullfield optical coherence tomography: a review, J. Biomed. Opt. 27, 050901( 2022). https:// doi. org / 10.1117 / 1. JBO. 27.5.050901.
50 Huang D, Swanson EA, Lin CP, Schuman JS, Stinson WG, Chang W, et al., Optical coherence tomography, Science 254, 1178( 1991). https:// doi. org / 10.1126 / science. 1957169.
51 Stifter D, Beyond biomedicine: a review of alternative applications and developments for optical coherence tomography, Appl. Phys. B 88, 337( 2007). https:// doi. org / 10.1007 / s00340-007-2743-2.
52 Fujimoto J, Swanson E, The development, commercialization, and impact of optical coherence tomography, invest. Ophthalmol. Vis. Sci. 57, OCT1 – OCT13( 2016). https:// doi. org / 10.1167 / iovs. 16-19963.
53 Su R, Kirillin M, Chang EW, Sergeeva E, Yun SH, Mattsson L, Perspectives of mid-infrared optical coherence tomography for inspection and micrometrology of industrial ceramics, Opt. Express 22, 15804( 2014). https:// doi. org / 10.1364 / OE. 22.015804.
54 Sakamoto F, Takahashi T, Tatami J, Iijima M, Prediction of strength based on defect analysis in Al 2 O 3 ceramics via nondestructive and three-dimensional observation using optical coherence tomography, J. Ceram. Soc. Japan 127, 462( 2019). https:// doi. org / 10.2109 / jcersj2.19020.
55 Toyokura S, Contactless mapping of ceramic green density using optical coherence tomography, Open Ceram. 5, 100061( 2021). https:// doi. org / 10.1016 / j. oceram. 2021.100061.
56 Takahashi T, Sakamoto F, Tatami J, Iijima M, In situ observation of evolution of internal structure of alumina during sintering by swept-source OCT, Int. J. Appl. Ceram. Technol. 19, 1171( 2022). https:// doi. org / 10.1111 / ijac. 13909.
57 Kopycinska-Müller M, Schreiber L, Schwarzer-Fischer E, Günther A, Phillips C, Moritz T, et al., Signal-decay based approach for visualization of buried defects in 3-D printed ceramic components imaged with help of optical coherence tomography, Materials 16, 3607( 2023). https:// doi. org / 10.3390 / ma16103607.
58 Chen Z, Shen Y, Bao W, Li P, Wang X, Ding Z, Identification of surface defects on glass by parallel spectral domain optical coherence tomography, Opt. Express 23, 23634( 2015). https:// doi. org / 10.1364 / OE. 23.023634.
59 Guss G, Bass I, Hackel R, Mailhiot C, Demos SG, in Proceedings of the Boulder Damage Symposium XXXIX: Annual Symposium on Optical Materials for High Power Lasers, Boulder, 2007, edited by JE. Gregory, HG. Arthur, LL. Keith, R. Detlev, MJ. Soileau, JS. Christopher( Proceedings Volume 6720, SPIE, 2007), p. 67201F. https:// doi. org / 10.1117 / 12.748452.
60 Hou F, Zhang M, Zheng Y, Ding L, Tang X, Liang Y, Detection of laser-induced bulk damage in optical crystals by swept-source optical coherence tomography, Opt. Express 27, 3698( 2019). https:// doi. org / 10.1364 / OE. 27.003698.