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Evolution of Tapered and TFBG Biosensors toward Hybrid Architectures
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DOI:10.1016/j.snr.2026.100498.png)
Abstract
En 中文
Optical fiber biosensors have gained prominence as versatile platforms for label-free, real-time biochemical analysis. Among the various architectures, Tapered Optical Fibers (TOFs) and Tilted Fiber Bragg Gratings (TFBGs) stand out for their exceptional sensitivity and clinical adaptability. This review provides a comprehensive, comparative overview of these two approaches, examining their fundamental sensing mechanisms and recent application trends in detecting targets ranging from small protein biomarkers to massive, folded viral genomes. Particular attention is given to advances in plasmonic coupling, complex nanomaterial amplification, and microfluidic multiplexing. Furthermore, we critically analyzed the fundamental physical limitations that currently hinder broader commercial and in vivo deployment, specifically the shallow penetration depth of TFBGs, the environmental cross-sensitivity of TOFs, and the geometric reproducibility of both. Finally, we propose future perspectives in which the physical hybridization of tapered fibers with TFBGs, enabled by advanced fabrication techniques like post-taper femtosecond inscription, may address these bottlenecks. By combining such structural innovations with algorithmic data processing, hybrid architectures represent a promising direction for the next generation of robust, point-of-care biosensing technologies.
Keywords:
Tilted fiber Bragg grating
Tapered optical fiber
Surface plasmon resonance
Label-free biosensing
Point-of-care diagnostics
Hybrid Tapered-TFBG
Journal
IF:
7.6
Papers:
467
Citations:
1.4K
