Zhao Jiawei, Hu Qiao, Fu Tongqiang, Liu Haiyang, Yao Yuanji, Zhou Wenzhe, Zhu Zicai
School of Mechanical Engineering, Xi'an Jiaotong University, Xi'an 710049, China.
Shaanxi Key Laboratory of Intelligent Robots, Xi'an Jiaotong University, Xi'an 710049, China.
ACS Nano. 2024 Aug 20;18(33):22010-22020. doi: 10.1021/acsnano.4c04094. Epub 2024 Aug 6.
Hydrophones play a crucial role in underwater target detection within sonar systems. However, existing hydrophones often encounter challenges such as low sensitivity and poor signal-to-noise ratio (SNR) in the detection of low-frequency acoustic signals. This work introduces a capacitive hydrophone (CH) designed for highly sensitive detection of low-frequency underwater sound signals. Comprising a latex film/silver electrode and a structured hydrogel as the electrolyte layer, the CH is enclosed in a cylindrical casing. By strategically integrating a carbon nanotube (CNT) topology network within a pyramid microarray in the hydrogel, the sensor efficiently forms the electric double layer (EDL), enhancing sensitivity and precision. The CH showcases exceptional low-pressure sensitivity across a wide frequency spectrum (20 to 800 Hz), achieving a receiving sensitivity of up to -159.7 dB in the critical low-frequency band (20 to 125 Hz), surpassing the performance of the commercial hydrophone (RHC-14) by a substantial margin of 33.29 dB. Furthermore, the CH maintains a superior SNR, enabling the detection of sound waves as faint as 0.3 Pa. This study demonstrates the capabilities of the CH in detecting maritime vessels and underwater sounds, underscoring the potential of the CNT-enhanced EDL sensing mechanism for future low-frequency hydrophone design.
水听器在声纳系统的水下目标探测中起着至关重要的作用。然而,现有的水听器在检测低频声信号时,常常面临诸如灵敏度低和信噪比差等挑战。这项工作介绍了一种电容式水听器(CH),其设计用于高灵敏度检测低频水下声音信号。CH由乳胶膜/银电极和作为电解质层的结构化水凝胶组成,封装在圆柱形外壳中。通过在水凝胶中的金字塔微阵列内策略性地集成碳纳米管(CNT)拓扑网络,该传感器有效地形成了双电层(EDL),提高了灵敏度和精度。CH在宽频谱(20至800Hz)上展现出卓越的低压灵敏度,在关键低频带(20至125Hz)达到高达-159.7dB的接收灵敏度,比商用 水听器(RHC-14)的性能大幅高出33.29dB。此外,CH保持着优异的信噪比,能够检测低至0.3Pa的微弱声波。这项研究展示了CH在检测海上船只和水下声音方面的能力,突出了CNT增强的EDL传感机制在未来低频水听器设计中的潜力。