Metodología para el diseño de filtros ópticos Bragg UV-Vis
DOI:
https://doi.org/10.29057/icbi.v14iEspecial.15378Palabras clave:
Filtros ópticos, Estructuras Bragg, Simulación óptica, Materiales dispersivos, UV-VisResumen
Este trabajo presenta una metodología computacional integral para el diseño de filtros ópticos multicapa tipo Bragg en la región UV-Visible (UV-Vis). La propuesta combina el modelado espectral de materiales dispersivos mediante ecuaciones de Sellmeier, la simulación óptica con el método de matrices de transferencia (TMM), y un proceso de optimización espectral basado en mínimos cuadrados. Asimismo, se incorpora un análisis de tolerancia estructural utilizando simulaciones Monte Carlo para evaluar la robustez del diseño ante variaciones típicas de fabricación. La metodología se implementó completamente en lenguaje Python, empleando bibliotecas científicas de código abierto que garantizan su reproducibilidad y escalabilidad. Los resultados validan la eficiencia del enfoque, al lograr filtros con alta selectividad espectral en el UV y buena tolerancia a errores de espesor, lo que demuestra su aplicabilidad en el desarrollo de recubrimientos ópticos funcionales y dispositivos selectivos.
Descargas
Citas
Al-Syouri, H. T., Saad, M. F., & Lateef, M. (2021). The effects of UV light on the chemical and mechanical properties of polymers. Materials, 10(2), 180. https://doi.org/10.3390/ma10020180
Born, M., & Wolf, E. (1999). Principles of optics (7th ed.). Cambridge University Press.
Chen, X., Bai, R., & Huang, M. (2019). Optical properties of amorphous Ta₂O₅ thin films deposited by RF magnetron sputtering. Optical Materials, 97, 109404. https://doi.org/10.1016/j.optmat.2019.109404
Contreras Bravo, L. E., & Padilla Beltrán, J. E. (2024). Ciencia de datos con Python: Transformación y selección de variables (1ª ed.). Ediciones de la U. ISBN 978-958-792-762-7
Dai, J., Gao, W., Liu, B., Cao, X., Tao, T., Xie, Z., … Zhang, R. (2016). Design and fabrication of UV band-pass filters based on SiO₂/Si₃N₄ dielectric distributed Bragg reflectors. Applied Surface Science, 364, 886–891. https://doi.org/10.1016/j.apsusc.2015.12.222
Gao, B., George, J. P., Beeckman, J., & Neyts, K. (2020). Design, fabrication and characterization of a distributed Bragg reflector for reducing the étendue of a wavelength-converting system. Optics Express, 28(9), 12837–12846. https://doi.org/10.1364/OE.391080
Hathal, Y. R., Ibrahim, I. M., & Khalaf, M. K. (2024). Photosensitivity of Nb₂O₅/Si thin films produced via DC reactive sputtering at different substrate temperatures. Iraqi Journal of Applied Physics, 20(2B), 349–356. https://ijap-iq.com/index.php/ijap/article/view/45
Hecht, E. (2017). Optics (5th ed.). Pearson Education.
Hobson, M. P., & Baldwin, J. E. (2004). Markov-chain Monte Carlo approach to the design of multilayer thin-film optical coatings. Applied Optics, 43(13), 2651–2660. https://doi.org/10.1364/AO.43.002651
Hunter, J. D. (2007). Matplotlib: A 2D graphics environment. Computing in Science & Engineering, 9(3), 90–95. https://doi.org/10.1109/MCSE.2007.55
Li, H. H. (1980). Refractive index of alkaline earth halides and its wavelength and temperature derivatives. Journal of Physical and Chemical Reference Data, 9(1), 161–290. https://doi.org/10.1063/1.555616
Liang, H., Han, H., Wang, F., Cheng, Z., Lin, B., Pan, Y., & Tan, J. (2019). Experimental investigation on spectral splitting of photovoltaic/thermal hybrid system with two-axis sun tracking based on SiO₂/TiO₂ interference thin film. Energy Conversion and Management, 188, 230–240. https://doi.org/10.1016/j.enconman.2019.03.060
Lizcano, Y., et al. (2024). Practical design of an optical filter for thermal management of photovoltaic modules. Progress in Photovoltaics, 32(11), 753. https://doi.org/10.1002/pip.3813
MacLeod, H. A. (2010). Thin-film optical filters (4th ed.). CRC Press. https://doi.org/10.1201/9781420073034
Palik, E. D. (Ed.). (1997). Handbook of optical constants of solids. Academic Press.
Polyanskiy, M. N. (2024). RefractiveIndex.info: Database of optical constants. Scientific Data, 11, 94. https://doi.org/10.1038/s41597-023-02898-2
Ryu, T. U., Hahn, S. H., Kim, S. W., & Kim, E. J. (2000). Optical, mechanical and thermal properties of MgF₂–ZnS and MgF₂–Ta₂O₅ composite thin films deposited by coevaporation. Optical Engineering, 39(12), 3207–3213. https://doi.org/10.1117/1.1320978
Singh, J., & Wolfe, D. E. (2005). Review: Nano and macro-structured component fabrication by electron beam–physical vapor deposition (EB-PVD). Journal of Materials Science, 40(1), 1–26. https://doi.org/10.1007/s10853-005-5682-5
Tajima, N., Murotani, H., & Matsudaira, T. (2023). Optical multicoating using low-refractive-index SiO₂ optical thin films deposited by sputtering and electron beam evaporation. Thin Solid Films, 776, 139824. https://doi.org/10.1016/j.tsf.2023.139824
Tsai, R. Y., & Hua, M. Y. (1995, June). Comparative study of TiO₂–MgF₂ composite films prepared by electron-beam coevaporation and reactive ion-assisted coevaporation. En Optical Interference Coatings (p. ThB11). Optica Publishing Group.
Virtanen, P., Gommers, R., Oliphant, T. E., Haberland, M., Reddy, T., Cournapeau, D., … van der Walt, S. J. (2020). SciPy 1.0: Fundamental algorithms for scientific computing in Python. Nature Methods, 17(3), 261–272. https://doi.org/10.1038/s41592-019-0686-2
Wan Harrum, W. M. (2023). Synthesis and characterization of zinc oxide/graphene (ZnO/Gn) on titanium dioxide/niobium pentoxide (TiO₂/Nb₂O₅) thin film for methylene blue removal (Tesis de maestría). Universiti Teknologi MARA (UiTM). https://ir.uitm.edu.my/id/eprint/106832/
Wang, X., et al. (2023). Photonic structures in radiative cooling. Light: Science & Applications, 12, 134. https://doi.org/10.1038/s41377-023-01119-0
Woo, S. H., Kim, S. H., & Hwangbo, C. K. (2004). Optical and structural properties of TiO₂ and MgF₂ thin films by plasma ion-assisted deposition. Journal of the Korean Physical Society, 45(1), 99–107.
Yeh, P. (1988). Optical waves in layered media. Wiley-Interscience.
Yousif, E., & Haddad, R. (2014). Photodegradation and photostabilization of polymers, especially polystyrene: Review. SpringerPlus, 3, 398. https://doi.org/10.1186/2193-1801-2-398
Zou, W., Sastry, M., Gooding, J. J., Ramanathan, R., & Bansal, V. (2020). Recent advances and a roadmap to wearable UV sensor technologies. Advanced Materials Technologies, 5(4), 1901036. https://doi.org/10.1002/admt.201901036
Descargas
Publicado
Cómo citar
Número
Sección
Licencia
Derechos de autor 2026 Benito Canales-Pacheco, Bartolome Reyes-Ramírez, Esteban Rueda-Soriano, Luis-Alberto Ruiz-Aguilar

Esta obra está bajo una licencia internacional Creative Commons Atribución-NoComercial-SinDerivadas 4.0.










