Yuan Dong, Can Sun, Yongkang Huang, Zeyu Tan, Yao Chen, Minghua Lin, Jing Yang, Zhuo Cheng, Tianye Huang, Zhichao Wu, Chong Hou, Xiangyun Hu, Jing Zhang
To overcome the intrinsic noise limitations of the distributed acoustic optical fiber sensing (DAS) system, this study presents an economical photonic-electronic hybrid acoustic sensing system that integrates the DAS system with a flexible piezoelectric fiber sensor. The key concept is to cross-correlate synchronized optical and electrical signals so that common acoustic components are reinforced while uncorrelated sensor noise is efficiently suppressed. In this way, signal quality can be improved through a simple and lightweight processing strategy without costly hardware modification or computationally intensive algorithms. Experiments demonstrate wide-band acoustic detection from 170 Hz to 10 kHz, with average signal-to-noise ratio (SNR) enhancements of 6.7 dB for the photonic channel and 3.8 dB for the electronic channel. Furthermore, because both the piezoelectric sensor and the optical fiber are fiber-shaped devices, the piezoelectric fiber can be fabricated over long lengths and co-deployed with the sensing fiber in distributed monitoring environments. These features make the proposed approach a practical route toward high-quality, broadband, and deployment-compatible acoustic sensing for advanced distributed monitoring applications.