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optical fibers while achieving full compatibility with silicon photonics and planar integrated circuits. This evolution could lead to compact, mass-producible Fano-based devices directly integrated into telecommunication, biomedical, and quantum systems. In summary, the coming decade is poised to witness the emergence of adaptive, multifunctional, and miniaturized Fano-resonant fiber systems, bridging the gap between fundamental photonics and real-world applications.
Acknowledgments
This work is funded by national funds through FCT – Fundação para a Ciência e a Tecnologia, I. P., under the support UID / 50014 / 2025( https:// doi. org / 10.54499 / UID / 50014 / 2025. This work was also carried out under Project No. 15022( ACLART – Prediction of clinical outcomes of anterior cruciate ligament reconstruction through in silico simulation combined with artificial intelligence), reference COMPETE2023-FEDER-00867200. The project was co-financed by the European Regional Development Fund( ERDF) under the PORTUGAL2030 program, and by the budget of the Foundation for Science and Technology, I. P.( FCT).
Conflicts of interest The authors have nothing to disclose.
Data availability statement
This article has no associated data generated and / or analyzed / Data associated with this article cannot be disclosed due to legal / ethical / other reason.
Author contribution statement
We expect that all authors will have reviewed, discussed, and agreed to their individual contributions ahead of this time. Contributions will be published before the references section, and they should accurately reflect contributions to the work. The Conceptualization, O. Frazão and V. Piaia; Software, V. Piaia. and P. Robalinho; Validation, S. Silva and O. Frazão.; Writing – Original Draft Preparation, O. Frazão and V. Piaia; Writing – Review & Editing, P. Robalinho and S. Silva.; Supervision, O. Frazão.
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