科研速览 · Science Skim继续刷下去 · Keep skimming →
◆ Smart Materials and Structures2026-06-01· Materials science

High-sensitivity flexible wireless passive LC pressure sensor enabled by a magnetic field-induced ciliary microstructure

Hang Liang Ren, Yi Hu, Qi Xu, Junhao Meng, Xiangjun Jin, Zhiping Sun, Zhenyu Xue, Peimei Dong, Ke Wang, Xudong Cheng

原始摘要(英文原文)· Original abstract
Abstract Flexible wireless passive inductance–capacitance (LC) pressure sensors exhibit considerable potential in diverse pressure monitoring applications. Nevertheless, their performance has been persistently constrained by the intrinsic trade-off between sensitivity and detection range. In this study, a flexible LC pressure sensor with high sensitivity is presented, employing a dielectric layer engineered with a magnetic field-induced ciliary microstructure this enhanced performance is achieved through the synergistic optimization of microstructural design and the precise modulation of dielectric material properties. The designed dielectric layer introduces a directional magnetic field during the curing process of the PDMS matrix doped with hydroxyl iron powder, simultaneously achieving the chain-like ordered arrangement of hydroxyl iron particles and the controllable construction of polymer cilia microstructures. This magnetically engineered ciliary microstructure breaks the inherent sensitivity-range trade-off through a gradient compression deformation mechanism, enabling both ultrahigh low-pressure sensitivity and a broad linear detection range. The resulting LC sensor exhibits excellent comprehensive performance with a sensitivity of 2824 kHz kPa −1 in the 0–20 kPa range and a stable response of 76.6 kHz kPa −1 in the 20–200 kPa range, successfully balancing high sensitivity and wide range. It also features rapid dynamic response (180 ms 200 ms) −1 , an ultra-low detection limit (8 Pa), good cycle stability, and excellent temperature and humidity adaptability. Wireless testing shows that its quality factor Q value can reach 55, demonstrating efficient signal transmission and resonant characteristics. The sensor demonstrates high precision and reliable signal response. The study provides a new approach to solving the inherent trade-off between sensitivity and range of flexible wireless pressure sensors through the collaborative optimization of microstructure design and dielectric materials, laying a technical foundation for their application in wearable health monitoring and interactive devices, and showing promising application prospects.
读原文 · Read the paper ↗

AI 追问PRO

登录后使用 AI 追问

讨论区

登录后参与讨论

相关论文 · Related

High-sensitivity flexible wireless passive LC pressure sensor enabled by a magnetic field-induced ciliary microstructure — 科研速览 Science Skim