光学
弯曲
飞秒
包层(金属加工)
题字图形
光纤传感器
光纤
激光器
材料科学
光纤布拉格光栅
光纤激光器
变形(气象学)
激光扫描
计算机科学
可扩展性
瑞利散射
Lift(数据挖掘)
连贯性(哲学赌博策略)
超细纤维
磷
纤维
物理
光子学
声学
保偏光纤
回复反射器
弹性(物理)
光子晶体光纤
作者
Pengtao Luo,Fengyi Chen,Tuan Guo,Xueguang Qiao,Ruohui Wang
标识
DOI:10.1038/s41377-026-02425-z
摘要
Optical fiber sensors have emerged as a powerful platform for high-precision shape detection in soft robotics and minimally invasive medical devices. However, existing fiber-sensing architectures face a long-standing trade-off between device size and spatial resolution. This work reports a miniaturized three-dimensional shape-sensing system based on misplaced orthogonal eccentric scatterers (MOESs) densely inscribed into the cladding of a standard single-mode fiber. The MOESs array is fabricated through a scalable reel-to-reel femtosecond laser writing process. Each MOES element functions as a curvature-dependent Rayleigh scatterer, and their misplaced orthogonal arrangement spatially encodes full 3D deformation information within a single fiber core. Experimental results demonstrate high-fidelity 2D bending and full 3D deformation reconstruction. The intensity-domain reconstruction algorithm further exhibits strong immunity to environmental perturbations. This approach defines a new paradigm for compact, cost-effective, and high-fidelity fiber sensors, paving the way for applications in unstructured and dynamic environments.
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