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一种纳牛顿级仿生机械传感器。

A nanonewton-scale biomimetic mechanosensor.

作者信息

Zhang Chi, Wu Mengxi, Li Ming, Che Lixuan, Tan Zhiguang, Guo Di, Kang Zhan, Cao Shuye, Zhang Siqi, Sui Yu, Sun Jining, Wang Liding, Liu Junshan

机构信息

State Key Laboratory of High-performance Precision Manufacturing, Dalian University of Technology, 116024 Dalian, Liaoning China.

Key Laboratory for Micro/Nano Technology and System of Liaoning Province, Dalian University of Technology, 116024 Dalian, Liaoning China.

出版信息

Microsyst Nanoeng. 2023 Jul 11;9:87. doi: 10.1038/s41378-023-00560-w. eCollection 2023.

Abstract

Biomimetic mechanosensors have profound implications for various areas, including health care, prosthetics, human‒machine interfaces, and robotics. As one of the most important parameters, the sensitivity of mechanosensors is intrinsically determined by the detection resolution to mechanical force. In this manuscript, we expand the force detection resolution of current biomimetic mechanosensors from the micronewton to nanonewton scale. We develop a nanocrack-based electronic whisker-type mechanosensor that has a detection resolution of 72.2 nN. We achieve the perception of subtle mechanical stimuli, such as tiny objects and airflow, and the recognition of surface morphology down to a 30 nm height, which is the finest resolution ever reported in biomimetic mechanosensors. More importantly, we explore the use of this mechanosensor in wearable devices for sensing gravity field orientation with respect to the body, which has not been previously achieved by these types of sensors. We develop a wearable smart system for sensing the body's posture and movements, which can be used for remote monitoring of falls in elderly people. In summary, the proposed device offers great advantages for not only improving sensing ability but also expanding functions and thus can be used in many fields not currently served by mechanosensors.

摘要

仿生机械传感器在包括医疗保健、假肢、人机接口和机器人技术等各个领域都有深远影响。作为最重要的参数之一,机械传感器的灵敏度本质上由对机械力的检测分辨率决定。在本论文中,我们将当前仿生机械传感器的力检测分辨率从微牛顿扩展到了纳牛顿级别。我们开发了一种基于纳米裂纹的电子晶须型机械传感器,其检测分辨率为72.2纳牛顿。我们实现了对微小物体和气流等细微机械刺激的感知,以及对低至30纳米高度的表面形态的识别,这是仿生机械传感器中迄今报道的最高分辨率。更重要的是,我们探索了这种机械传感器在可穿戴设备中用于感知重力场相对于身体的方向,而这是此前这类传感器未曾实现的。我们开发了一种用于感知身体姿势和动作的可穿戴智能系统,可用于远程监测老年人跌倒情况。总之,所提出的设备不仅在提高传感能力方面具有巨大优势,而且在扩展功能方面也有优势,因此可用于许多当前机械传感器尚未涉及的领域。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3431/10333214/b78174997d5d/41378_2023_560_Fig1_HTML.jpg

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