光学
光束
干扰(通信)
高斯分布
灵敏度(控制系统)
流离失所(心理学)
材料科学
解调
线性
物理
加权
高斯光束
旋涡
空间滤波器
空间频率
拓扑量子数
涡流
透射系数
电子束光刻
梁(结构)
光环行器
调制(音乐)
表征(材料科学)
折射率
光电子学
光纤
自由空间光通信
空间光调制器
光场
光学传感
近场和远场
纳米结构
光学滤波器
光散射
光场
光通信
自适应光学
作者
Kaili Ren,Menghao Li,Yipeng Zheng,Xuexue Zhang,Yingbo Li,Siqi Li,Guoxi Wang
出处
期刊:Optics Letters
[Optica Publishing Group]
日期:2025-11-20
卷期号:51 (1): 13-13
摘要
A highly stable nano-displacement sensing system is proposed to address key bottlenecks in high-precision optical vortex-based metrology: reliance on bulky, high-cost spatial light modulators, and vulnerability to ambient perturbations. By fabricating a flexible, compact metadevice composed of 2D subwavelength nanostructure arrays, a 4th-order vortex beam is generated without requiring a specific propagation distance. Notably, combining the topological charge with the Gaussian weighting method effectively suppresses the random errors of the petal-shaped interference pattern, thereby enhancing demodulation accuracy and stability. The sensitivity exceeds 0.05813°/nm and the linearity coefficient reaches 0.99995 within a 400 nm displacement range. Thus, the minimum uncertainty of 0.01% is achieved with a step size of 200 nm. This method demonstrates the superiority of metadevices, which serve as excellent integrated optical devices, in enabling efficient light field regulation and characterization for high-precision measurements.
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