Zhang Heng, Liu Dan, Lee Jeng-Hun, Chen Haomin, Kim Eunyoung, Shen Xi, Zheng Qingbin, Yang Jinglei, Kim Jang-Kyo
Department of Mechanical and Aerospace Engineering, The Hong Kong University of Science and Technology, Clear Water Bay, Kowloon, Hong Kong, People's Republic of China.
School of Science and Engineering, The Chinese University of Hong Kong, Shenzhen, 518172, Guangdong, People's Republic of China.
Nanomicro Lett. 2021 May 4;13(1):122. doi: 10.1007/s40820-021-00615-5.
Flexible multidirectional strain sensors are crucial to accurately determining the complex strain states involved in emerging sensing applications. Although considerable efforts have been made to construct anisotropic structures for improved selective sensing capabilities, existing anisotropic sensors suffer from a trade-off between high sensitivity and high stretchability with acceptable linearity. Here, an ultrasensitive, highly selective multidirectional sensor is developed by rational design of functionally different anisotropic layers. The bilayer sensor consists of an aligned carbon nanotube (CNT) array assembled on top of a periodically wrinkled and cracked CNT-graphene oxide film. The transversely aligned CNT layer bridge the underlying longitudinal microcracks to effectively discourage their propagation even when highly stretched, leading to superior sensitivity with a gauge factor of 287.6 across a broad linear working range of up to 100% strain. The wrinkles generated through a pre-straining/releasing routine in the direction transverse to CNT alignment is responsible for exceptional selectivity of 6.3, to the benefit of accurate detection of loading directions by the multidirectional sensor. This work proposes a unique approach to leveraging the inherent merits of two cross-influential anisotropic structures to resolve the trade-off among sensitivity, selectivity, and stretchability, demonstrating promising applications in full-range, multi-axis human motion detection for wearable electronics and smart robotics.
柔性多向应变传感器对于准确确定新兴传感应用中涉及的复杂应变状态至关重要。尽管已经做出了相当大的努力来构建各向异性结构以提高选择性传感能力,但现有的各向异性传感器在高灵敏度和高拉伸性以及可接受的线性度之间存在权衡。在此,通过合理设计功能不同的各向异性层,开发了一种超灵敏、高选择性的多向传感器。双层传感器由组装在周期性起皱和开裂的碳纳米管-氧化石墨烯薄膜顶部的排列碳纳米管(CNT)阵列组成。横向排列的碳纳米管层桥接下面的纵向微裂纹,即使在高度拉伸时也能有效阻止其扩展,从而在高达100%应变的宽线性工作范围内具有287.6的应变计因子,展现出卓越的灵敏度。通过在与碳纳米管排列方向垂直的方向上进行预应变/释放程序产生的皱纹,使得传感器具有6.3的出色选择性,有利于多向传感器准确检测加载方向。这项工作提出了一种独特的方法,利用两种相互影响的各向异性结构的固有优点来解决灵敏度、选择性和拉伸性之间的权衡问题,展示了在可穿戴电子设备和智能机器人的全范围、多轴人体运动检测中的应用前景。