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March 10, 2026Advanced Optical Materials1 citationsOpen Access

Engineered Optical Fibers for Deep‐Tissue Applications

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YLYuzhen LiSZSiyang ZhengWLWenzhao Li

Key Points

  • To explore the design and application of engineered optical fibers for improved optical diagnostics and therapies in deep tissues.
  • Analyzed material systems including silica, polymers, and hydrogels for optical performance.
  • Examined structural designs like core geometries and propagation modes to enhance signal fidelity and resolution.
  • Reviewed applications in biomedical diagnostics and therapies, such as endoscopic imaging and optogenetics.
  • Identified critical materials that influence optical performance, mechanical compliance, and biocompatibility.
  • Demonstrated how refined structural designs can significantly improve optical signal integrity.
  • Outlined the extensive potential for these fibers in innovative medical applications like drug delivery and biosensing.

Abstract

Abstract High‐precision optical diagnostics and therapy in deep tissues are hindered by light scattering and absorption. Engineered optical fibers, serving as minimally invasive optical fibers, provide a powerful platform to bypass these barriers. This review systematically deconstructs the design of these advanced fibers from the unified perspectives of materials science and structural engineering. First, key material systems are analyzed—from traditional silica to emerging polymers and hydrogels—evaluating how their intrinsic properties dictate the fiber's optical performance, mechanical compliance, and biocompatibility. Then, critical structural paradigms are examined, including propagation modes, refractive index profiles, and core geometries, elucidating how these designs control features such as signal fidelity, resolution, and functional integration. The review further considers how the fiber's potential is amplified by auxiliary front‐end physical modulation and back‐end computational reconstruction techniques. Building on this foundational framework, the application of these engineered fibers is comprehensively surveyed in state‐of‐the‐art biomedical diagnostics, such as endoscopic imaging and biosensing, and in targeted therapeutics, including optogenetics, phototherapies, and drug delivery. Ultimately, by systematically linking engineering principles to biomedical functions, this review establishes a foundational framework for designing next‐generation, clinically focused fiber‐optic systems, concluding with a critical assessment of prevailing challenges to illuminate future research directions in this burgeoning field .

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Cite This Study

Li et al. (2026) studied this question.

synapsesocial.com/papers/69af951a70916d39fea4c43chttps://doi.org/10.1002/adom.202502861
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