Xu Muzi, Zhang Jiaqi, Dong Chaoqun, Tang Chenyu, Hu Fangxin, Malliaras George G, Occhipinti Luigi G
Electrical Engineering Division, Department of Engineering, University of Cambridge, Cambridge, CB3 0FA, UK.
Department of Electrical and Electronic Engineering, University of Hong Kong, Pokfulam Road, Hong Kong SAR, 999077, China.
Adv Mater. 2025 Apr;37(17):e2420322. doi: 10.1002/adma.202420322. Epub 2025 Jan 31.
Omnidirectional strain sensing and direction recognition ability are features of the human tactile sense, essential to address the intricate and dynamic requirements of real-world applications. Most of the current strain sensors work by converting uniaxial strain into electrical signals, which restricts their use in environments with multiaxial strain. Here, the first device with simultaneous isotropic omnidirectional hypersensitive strain sensing and direction recognition (IOHSDR) capabilities is introduced. By mimicking the human fingers from three dimensions, the IOHSDR device realizes a novel heterogeneous substrate that incorporates the involute of a circle, resulting in isotropic behavior in the radial direction and anisotropic property in the involute direction for hypersensitive strain sensing. With the assistance of a deep learning-based model, the IOHSDR device accomplishes an impressive accuracy of 99.58% in recognizing 360° stretching directions. Additionally, it exhibits superior performance in the typical properties of stretchable strain sensors, with a gauge factor of 634.12, an ultralow detection limit of 0.01%, and outstanding durability exceeding 15 000 cycles. The demonstration of radial artery pulse and throat vibration applications highlights the IOHSDR's unique characteristics of isotropic omnidirectional sensing and precise direction detection unleashing new classes of wearable health monitoring devices.
全向应变传感和方向识别能力是人类触觉的特征,对于满足现实世界应用中复杂多变的需求至关重要。目前大多数应变传感器通过将单轴应变转换为电信号来工作,这限制了它们在多轴应变环境中的应用。在此,介绍了首款具有同时各向同性全向超灵敏应变传感和方向识别(IOHSDR)能力的器件。通过从三个维度模拟人类手指,IOHSDR器件实现了一种新型异质衬底,该衬底包含圆的渐开线,从而在径向方向上实现各向同性行为,在渐开线方向上实现各向异性特性以实现超灵敏应变传感。在基于深度学习的模型的辅助下,IOHSDR器件在识别360°拉伸方向时实现了99.58%的惊人准确率。此外,它在可拉伸应变传感器的典型性能方面表现出色,应变片系数为634.12,超低检测限为0.01%,并且具有超过15000次循环的出色耐久性。桡动脉脉搏和喉部振动应用的演示突出了IOHSDR各向同性全向传感和精确方向检测的独特特性,从而催生了新型可穿戴健康监测设备。