| [1] | Neumann, H. et al. Confocal laser endomicroscopy: technical advances and clinical applications. Gastroenterology 139, 388-392.e2 (2010). doi: 10.1053/j.gastro.2010.06.029 |
| [2] | Paull, P. E. et al. Confocal laser endomicroscopy: a primer for pathologists. Archives of Pathology & Laboratory Medicine 135, 1343-1348 (2011). doi: 10.5858/arpa.2010-0264-ra |
| [3] | Li, J. W. et al. Ultrathin monolithic 3D printed optical coherence tomography endoscopy for preclinical and clinical use. Light: Science & Applications 9, 124 (2020). doi: 10.1038/s41377-020-00365-w |
| [4] | Rocha, A. D. et al. First clinical feasibility and safety study of a novel multimodality fallopian tube imaging endoscope. Lasers in Surgery and Medicine 57, 163-170 (2025). doi: 10.1002/lsm.23877 |
| [5] | Li, J.W. et al. Single-fiber probes for combined sensing and imaging in biological tissue: recent developments and prospects. Biomedical Optics Express 15, 2392-2405 (2024). doi: 10.1364/BOE.517920 |
| [6] | Sattin, A. et al. Aberration correction in long GRIN lens-based microendoscopes for extended field-of-view two-photon imaging in deep brain regions. eLife 13, RP101420 (2025). doi: 10.7554/eLife.101420 |
| [7] | Liang, C. et al. Design of a high-numerical-aperture miniature microscope objective for an endoscopic fiber confocal reflectance microscope. Applied Optics 41, 4603-4610 (2002). doi: 10.1364/AO.41.004603 |
| [8] | Yoon, C. et al. Removal of back-reflection noise at ultrathin imaging probes by the single-core illumination and wide-field detection. Scientific Reports 7, 6524 (2017). doi: 10.1038/s41598-017-07024-y |
| [9] | Kiekens, K. C. et al. Reengineering a falloposcope imaging system for clinical use. Translational Biophotonics 2, e202000011 (2020). doi: 10.1002/tbio.202000011 |
| [10] | Seibel, E. J., Johnston, R. S. & Melville, C. D. A full-color scanning fiber endoscope Optical fibers and sensors for medical diagnostics and treatment applications VI. San Jose, California, USA: SPIE, 2006. |
| [11] | Wende, M., Drozella, J. & Herkommer, A. M. Fast bidirectional vector wave propagation method showcased on targeted noise reduction in imaging fiber bundles using 3D-printed micro optics. Optics Express 31, 28874-28890 (2023). doi: 10.1364/OE.497244 |
| [12] | Juškattis, R., Wilson, T. & Watson, T. F. Real-time white light reflection confocal microscopy using a fibre-optic bundle. Scanning 19, 15-19 (1997). doi: 10.1002/sca.4950190102 |
| [13] | Genchi, L. et al. A two-photon lensless endoscope with a double-clad tapered multi-core fiber. Optics Letters 50, 2626-2629 (2025). doi: 10.1364/OL.550709 |
| [14] | Amitonova, L. V. & de Boer, J. F. Endo-microscopy beyond the Abbe and Nyquist limits. Light: Science & Applications 9, 81 (2020). doi: 10.1038/s41377-020-0308-x |
| [15] | Lich, J. et al. Single-shot 3D incoherent imaging with diffuser endoscopy. Light: Advanced Manufacturing 5, 15 (2024). doi: 10.37188/lam.2024.015 |
| [16] | Loterie, D. et al. Digital confocal microscopy through a multimode fiber. Optics Express 23, 23845-23858 (2015). doi: 10.1364/OE.23.023845 |
| [17] | Gissibl, T. et al. Two-photon direct laser writing of ultracompact multi-lens objectives. Nature Photonics 10, 554-560 (2016). doi: 10.1038/nphoton.2016.121 |
| [18] | Liberale, C. et al. Micro-optics fabrication on top of optical fibers using two-photon lithography. IEEE Photonics Technology Letters 22, 474-476 (2010). doi: 10.1109/LPT.2010.2040986 |
| [19] | Gonzalez-Hernandez, D. et al. Micro-optics 3D printed via multi-photon laser lithography. Advanced Optical Materials 11, 2201701 (2023). doi: 10.1002/adom.202201701 |
| [20] | Wang, H. et al. Two-photon polymerization lithography for optics and photonics: fundamentals, materials, technologies, and applications. Advanced Functional Materials 33, 2214211 (2023). doi: 10.1002/adfm.202214211 |
| [21] | Skliutas, E. et al. Multiphoton 3D lithography. Nature Reviews Methods Primers 5, 15 (2025). doi: 10.1038/s43586-025-00386-y |
| [22] | Bertoncini, A. & Liberale, C. Polarization micro-optics: circular polarization from a Fresnel Rhomb 3D printed on an optical fiber. IEEE Photonics Technology Letters 30, 1882-1885 (2018). doi: 10.1109/LPT.2018.2871161 |
| [23] | Lightman, S. et al. Vortex-Bessel beam generation by 3D direct printing of an integrated multi-optical element on a fiber tip. Optics Letters 47, 5248-5251 (2022). doi: 10.1364/OL.470924 |
| [24] | Hong, Z. H. et al. Three-dimensional printing of glass micro-optics. Optica 8, 904-910 (2021). doi: 10.1364/OPTICA.422955 |
| [25] | Galvez, D. et al. Characterizing close-focus lenses for microendoscopy. Journal of Optical Microsystems 3, 011003 (2023). doi: 10.1117/1.jom.3.1.011003 |
| [26] | Wende, M. et al. 3D-printed endo-microscope with a fast magnetic actuator for axial image plane scanning. Optics Letters 50, 2243-2246 (2025). doi: 10.1364/OL.546292 |
| [27] | Wende, M. et al. 3D-printed immersion micro optics. Light: Advanced Manufacturing 6, 19 (2025). |
| [28] | Toulouse, A. et al. Ultra-compact 3D-printed wide-angle cameras realized by multi-aperture freeform optical design. Optics Express 30, 707-720 (2022). doi: 10.1364/OE.439963 |
| [29] | Hughes, M. R. Real-timing processing of fiber bundle endomicroscopy images in python using pyfibrebundle. Applied Optics 62, 9041-9050 (2023). doi: 10.1364/AO.503700 |
| [30] | Weinacker, J. et al. On iterative pre-compensation of 3D laser-printed micro-optical components using confocal-optical microscopy. Advanced Functional Materials 34, 2309356 (2024). doi: 10.1002/adfm.202309356 |
| [31] | Jung, E. et al. Ultrabroadband plug-and-play photonic tensor core packaging with sub-db loss. Science Advances 11, eadz1883 (2025). doi: 10.1126/sciadv.adz1883 |
| [32] | Gálvez, D. et al. Resolution cascade: simulated mtf of a coherent fiber bundle-based microendoscopic system. Applied Optics 65, 637-645 (2026). doi: 10.1364/AO.576325 |
| [33] | Chen, X. P., Reichenbach, K. L. & Xu, C. Experimental and theoretical analysis of core-to-core coupling on fiber bundle imaging. Optics Express 16, 21598-21607 (2008). doi: 10.1364/OE.16.021598 |
| [34] | Toulouse, A. et al. A 3D-printed fiber core multiplexing endoscope. 3D Printed Optics and Additive Photonic Manufacturing IV. Strasbourg, France: SPIE, 2024. |
| [35] | Rüdinger, A. et al. Bimodal tissue differentiation using hyperspectral imaging and elastographic fourier transform profilometry. Light: Advanced Manufacturing 6, 73 (2025). doi: 10.37188/lam.2025.073 |
| [36] | Gross, H. Handbook of Optical Systems Volume 1: Fundamentals of Technical Optics (Weinheim: WILEY-VCH, 2005). |
| [37] | Ebstein, S. M. Achromatic diffractive optical elements. Diffractive and Holographic Optics Technology II. San Jose, California, USA: SPIE 1995. |
| [38] | Arieli, Y. et al. Design of a diffractive optical element for wide spectral bandwidth. Optics Letters 23, 823-824 (1998). doi: 10.1364/OL.23.000823 |
| [39] | Arieli, Y. et al. Design of diffractive optical elements for multiple wavelengths. Applied Optics 37, 6174-6177 (1998). doi: 10.1364/AO.37.006174 |
| [40] | Schmid, M. et al. 3D printed hybrid refractive/diffractive achromat and apochromat for the visible wavelength range. Optics Letters 46, 2485-2488 (2021). doi: 10.1364/OL.423196 |
| [41] | Thiele, S. et al. 3D printed stacked diffractive microlenses. Optics Express 27, 35621-35630 (2019). doi: 10.1364/OE.27.035621 |
| [42] | Hughes, M., Chang, T. P. & Yang, G. Z. Fiber bundle endocytoscopy. Biomedical Optics Express 4, 2781-2794 (2013). doi: 10.1364/BOE.4.002781 |
| [43] | Plöschner, M., Tyc, T. & Čižmár, T. Seeing through chaos in multimode fibres. Nature Photonics 9, 529-535 (2015). doi: 10.1038/nphoton.2015.112 |
| [44] | Inoue, H., Kudo, S. E. & Shiokawa, A. Technology insight: laser-scanning confocal microscopy and endocytoscopy for cellular observation of the gastrointestinal tract. Nature Clinical Practice Gastroenterology & Hepatology 2, 31-37 (2005). doi: 10.1038/ncpgasthep0072 |
| [45] | Liang, C. et al. Fiber confocal reflectance microscope (FCRM) for in-vivo imaging. Optics Express 9, 821-830 (2001). doi: 10.1364/oe.9.000821 |
| [46] | Sung, K. B. et al. Fiber-optic confocal reflectance microscope with miniature objective for in vivo imaging of human tissues. IEEE Transactions on Biomedical Engineering 49, 1168-1172 (2002). doi: 10.1109/TBME.2002.803524 |
| [47] | Wende, M. et al. Ultracompact multimodal endomicroscopy with a flexible fiber bundle and 3D-printed immersion micro-optics. Laser 3D Manufacturing XIII. San Francisco, California, USA: SPIE, 2026. |
| [48] | Singer, W., Totzeck, M. & Gross, H. Handbook of Optical Systems Volume 2: Physical Image Formation (Weinheim: WILEY-VCH, 2005). |
| [49] | Rothermel, F. et al. Fabrication and characterization of a magnetic 3D-printed microactuator. Advanced Materials Technologies 9, 2302196 (2024). doi: 10.1002/admt.202302196 |
| [50] | Lux, F., Calikoglu, A. & Ataman, Ç. Monolithically 3D-nanoprinted millimeter-scale lens actuator for dynamic focus control in optical systems. Advanced Photonics Nexus 4, 046015 (2025). doi: 10.1117/1.apn.4.4.046015 |
| [51] | Lux, F., Ditchendorf, E. & Ataman, Ç. Closed-loop control of a monolithically 3D nano-printed electromagnetic lens scanner with an integrated hall sensor. Print at https://doi.org/10.48550arXiv.2602.20779 (2026). |
| [52] | Choi, Y. et al. Scanner-free and wide-field endoscopic imaging by using a single multimode optical fiber. Physical review letters 109, 203901 (2012). doi: 10.1103/PhysRevLett.109.203901 |
| [53] | Liu, X., Huang, Y. & Kang, J. U. Dark-field illuminated reflectance fiber bundle endoscopic microscope. Journal of Biomedical Optics 16, 046003 (2011). doi: 10.1117/1.3560298 |
| [54] | O’Shea, D. C. Diffractive optics: Design, Fabrication, and Test. (Bellingham: SPIE Press, 2004). |
| [55] | Schmid, M., Ludescher, D. & Giessen, H. Optical properties of photoresists for femtosecond 3D printing: refractive index, extinction, luminescence-dose dependence, aging, heat treatment and comparison between 1-photon and 2-photon exposure. Optical Materials Express 9, 4564-4577 (2019). doi: 10.1364/OME.9.004564 |
| [56] | Bianchi, S. et al. Focusing and imaging with increased numerical apertures through multimode fibers with micro-fabricated optics. Optics Letters 38, 4935-4938 (2013). doi: 10.1364/OL.38.004935 |
| [57] | Wilde, F. et al. Micro-CT at the imaging beamline P05 at PETRA III. AIP Conference Proceedings 1741, 030035 (2016). |
| [58] | Moosmann, J. et al. Time-lapse X-ray phase-contrast microtomography for in vivo imaging and analysis of morphogenesis. Nature Protocols 9, 294-304 (2014). doi: 10.1038/nprot.2014.033 |