转导(生物物理学)
压电
声学
波形
生物医学工程
材料科学
生物力学
刺激(心理学)
电压
脉搏(音乐)
计算机科学
功率密度
偶极子
人体运动
声致发光
功率(物理)
作者
Shengjie Liu,Minqi Chen,Zhongqian Song,Weiyan Li,Huijun Kong,Shenqi Zhang,Yu Bao,Li Niu
标识
DOI:10.1038/s41528-026-00546-4
摘要
Accurate monitoring biomechanical signals is critical for physiological assessment and clinical interventions, but remains challenging due to their dynamic and imperceptible characteristics. Here, inspired by the spiderweb’s ability to perceive weak mechanical perturbations, we present a flextensional transduction strategy that allows piezoelectric devices to detect slight mechanical stimulus with ultrahigh sensitivity. Finite-element simulations and experimental validations demonstrate that flextensional strain amplification and dipole reorientation in amorphous PVDF domains synergistically enable a record output voltage of 161.5 V and a power density of 153.4 μW·cm − ² under sub-Newton-level mechanical stimuli. The device allows for real-time contact force monitoring during endovascular aneurysm interventions and high-fidelity pulse waveforms acquisition for noninvasive blood pressure estimation. This bioinspired strategy establishes a universal route for transducing imperceptible biomechanical stimuli into measurable electrical signals for ultrasensitive biomedical monitoring.
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