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一种人工智能辅助的柔性可穿戴机械发光应变传感器系统。

An Artificial Intelligence-Assisted Flexible and Wearable Mechanoluminescent Strain Sensor System.

作者信息

Dong Yan, An Wenzheng, Wang Zihu, Zhang Dongzhi

机构信息

College of Control Science and Engineering, China University of Petroleum (East China), Qingdao, 266580, People's Republic of China.

出版信息

Nanomicro Lett. 2024 Nov 15;17(1):62. doi: 10.1007/s40820-024-01572-5.

Abstract

The complex wiring, bulky data collection devices, and difficulty in fast and on-site data interpretation significantly limit the practical application of flexible strain sensors as wearable devices. To tackle these challenges, this work develops an artificial intelligence-assisted, wireless, flexible, and wearable mechanoluminescent strain sensor system (AIFWMLS) by integration of deep learning neural network-based color data processing system (CDPS) with a sandwich-structured flexible mechanoluminescent sensor (SFLC) film. The SFLC film shows remarkable and robust mechanoluminescent performance with a simple structure for easy fabrication. The CDPS system can rapidly and accurately extract and interpret the color of the SFLC film to strain values with auto-correction of errors caused by the varying color temperature, which significantly improves the accuracy of the predicted strain. A smart glove mechanoluminescent sensor system demonstrates the great potential of the AIFWMLS system in human gesture recognition. Moreover, the versatile SFLC film can also serve as a encryption device. The integration of deep learning neural network-based artificial intelligence and SFLC film provides a promising strategy to break the "color to strain value" bottleneck that hinders the practical application of flexible colorimetric strain sensors, which could promote the development of wearable and flexible strain sensors from laboratory research to consumer markets.

摘要

复杂的布线、庞大的数据收集设备以及快速和现场数据解读的困难,严重限制了柔性应变传感器作为可穿戴设备的实际应用。为应对这些挑战,本工作通过将基于深度学习神经网络的颜色数据处理系统(CDPS)与三明治结构的柔性机械发光传感器(SFLC)薄膜集成,开发了一种人工智能辅助的、无线的、柔性的可穿戴机械发光应变传感器系统(AIFWMLS)。SFLC薄膜具有卓越且稳定的机械发光性能,结构简单易于制造。CDPS系统能够快速准确地将SFLC薄膜的颜色提取并解读为应变值,同时自动校正由色温变化引起的误差,显著提高了预测应变的准确性。一个智能手套机械发光传感器系统展示了AIFWMLS系统在人体手势识别方面的巨大潜力。此外,多功能的SFLC薄膜还可用作加密设备。基于深度学习神经网络的人工智能与SFLC薄膜的集成提供了一种有前景的策略,以突破阻碍柔性比色应变传感器实际应用的“颜色对应变值”瓶颈,这有望推动可穿戴和柔性应变传感器从实验室研究向消费市场发展。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5168/11564496/54b7b81e737b/40820_2024_1572_Fig1_HTML.jpg

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