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基于压阻传感机制的柔性MXene/细菌纤维素薄膜声音探测器

Flexible MXene/Bacterial Cellulose Film Sound Detector Based on Piezoresistive Sensing Mechanism.

作者信息

Su Tuoyi, Liu Nishuang, Lei Dandan, Wang Luoxin, Ren Ziqi, Zhang Qixiang, Su Jun, Zhang Zhi, Gao Yihua

机构信息

Center for Nanoscale Characterization & Devices (CNCD), School of Physics & Wuhan National Laboratory for Optoelectronics (WNLO), Huazhong University of Science and Technology (HUST), Luoyu Road 1037, Wuhan 430074, China.

出版信息

ACS Nano. 2022 May 24;16(5):8461-8471. doi: 10.1021/acsnano.2c03155. Epub 2022 May 3.

Abstract

Flexible pressure sensors have aroused extensive attention in health monitoring, human-computer interaction, soft robotics, and more, as a staple member of wearable electronics. However, a majority of traditional research focuses solely on foundational mechanical sensing tests and ordinary human-motion monitoring, ignoring its other applications in daily life. In this work, a paper-based pressure sensor is prepared by using MXene/bacterial cellulose film with three-dimensional isolation layer structure, and its sensing capability as a wearable sound detector has also been studied. The as-prepared device exhibits great comprehensive mechanical sensing performance as well as accurate detection of human physiological signals. As a sound detector, not only can it recognize different voice signals and sound attributes by monitoring movement of throat muscles, but also it will distinguish a variety of natural sounds through air pressure waves caused by sound transmission (also called sound waves), like the eardrum. Besides, it plays an important role in sound visualization technology because of the ability for capturing and presenting music signals. Moreover, millimeter-scale thickness, lightweight, and degradable raw materials make the sensor convenient and easy to carry, meeting requirements of environmental protection as well.

摘要

作为可穿戴电子产品的主要成员,柔性压力传感器在健康监测、人机交互、软机器人等领域引起了广泛关注。然而,大多数传统研究仅专注于基础机械传感测试和普通人体运动监测,而忽略了其在日常生活中的其他应用。在这项工作中,通过使用具有三维隔离层结构的MXene/细菌纤维素膜制备了一种纸质压力传感器,并研究了其作为可穿戴声音探测器的传感能力。所制备的器件不仅具有出色的综合机械传感性能,还能准确检测人体生理信号。作为声音探测器,它不仅可以通过监测咽喉肌肉的运动来识别不同的语音信号和声音属性,还能像耳膜一样通过声音传播产生的气压波(也称为声波)区分各种自然声音。此外,由于其能够捕捉和呈现音乐信号,在声音可视化技术中发挥着重要作用。而且,毫米级的厚度、轻质以及可降解的原材料使得该传感器便于携带,同时也符合环保要求。

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