TY - JOUR
T1 - A Self-Adhesive Flexible Ultrawide-Bandwidth Triboelectric Ultrasonic Transducer for Non-Destructive Testing of Complex Industrial Structures
AU - Si, Shaobo
AU - Luo, Yan
AU - Huang, Juncheng
AU - Pan, Xiaosen
AU - Yi, Tao
AU - Wang, Xueying
AU - Tang, Ge
AU - Wang, Lei
AU - Sun, Xiangyu
AU - Xing, Zhanqiang
AU - Ji, Weiliang
AU - Sun, Chenchen
AU - Meng, Keyu
AU - Fang, Yunsheng
N1 - Publisher Copyright:
© 2026 Wiley-VCH GmbH.
PY - 2026
Y1 - 2026
N2 - Ultrasonic inspection technology offers substantial potential for structural health monitoring of critical infrastructure in the petrochemical, energy, and other core industrial sectors. However, conventional ultrasonic transducers face three fundamental limitations, namely that rigid functional materials fail to conform to curved surfaces, their narrow frequency response hinders broadband detection, and dependence on couplants degrades signal stability in complex industrial scenarios. Herein, a flexible ultrawide-bandwidth triboelectric ultrasonic transducer (FTUT) featuring a nano-interlocked dual-diaphragm structure and self-adhesive silicone is proposed to address these challenges. The FTUT demonstrates a broadband response from 0.02 to 8.5 MHz, a high receiver sensitivity of 25 dB at 100 kHz, and excellent mechanical adaptability to surfaces with a minimum curvature radius of 10 mm. Leveraging its ultrawide bandwidth and flexibility, the FTUT enables in situ damage localization in thin-plate structures at low frequencies (20–200 kHz) and high-resolution detection of internal defects in thick-walled structures at high frequencies (0.2–8.5 MHz). Ultimately, this study establishes a next-generation sensing paradigm for high-precision, adaptive, and robust nondestructive testing in harsh, complex industrial environments.
AB - Ultrasonic inspection technology offers substantial potential for structural health monitoring of critical infrastructure in the petrochemical, energy, and other core industrial sectors. However, conventional ultrasonic transducers face three fundamental limitations, namely that rigid functional materials fail to conform to curved surfaces, their narrow frequency response hinders broadband detection, and dependence on couplants degrades signal stability in complex industrial scenarios. Herein, a flexible ultrawide-bandwidth triboelectric ultrasonic transducer (FTUT) featuring a nano-interlocked dual-diaphragm structure and self-adhesive silicone is proposed to address these challenges. The FTUT demonstrates a broadband response from 0.02 to 8.5 MHz, a high receiver sensitivity of 25 dB at 100 kHz, and excellent mechanical adaptability to surfaces with a minimum curvature radius of 10 mm. Leveraging its ultrawide bandwidth and flexibility, the FTUT enables in situ damage localization in thin-plate structures at low frequencies (20–200 kHz) and high-resolution detection of internal defects in thick-walled structures at high frequencies (0.2–8.5 MHz). Ultimately, this study establishes a next-generation sensing paradigm for high-precision, adaptive, and robust nondestructive testing in harsh, complex industrial environments.
KW - flexible ultrasonic transducer
KW - in situ damage localization
KW - nondestructive testing
KW - self-adhesive silicone
KW - triboelectric effect
UR - https://www.scopus.com/pages/publications/105044746307
U2 - 10.1002/adfm.77069
DO - 10.1002/adfm.77069
M3 - 文章
AN - SCOPUS:105044746307
SN - 1616-301X
JO - Advanced Functional Materials
JF - Advanced Functional Materials
ER -