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力致发光:重新点亮压力传感的前景——综述

Mechanoluminescence Rebrightening the Prospects of Stress Sensing: A Review.

机构信息

College of Materials and Fujian Provincial Key Laboratory of Materials Genome, Xiamen University, Xiamen, 361005, China.

出版信息

Adv Mater. 2021 Dec;33(50):e2005925. doi: 10.1002/adma.202005925. Epub 2021 Mar 30.

Abstract

The emergence of new applications, such as in artificial intelligence, the internet of things, and biotechnology, has driven the evolution of stress sensing technology. For these emerging applications, stretchability, remoteness, stress distribution, a multimodal nature, and biocompatibility are important performance characteristics of stress sensors. Mechanoluminescence (ML)-based stress sensing has attracted widespread attention because of its characteristics of remoteness and having a distributed response to mechanical stimuli as well as its great potential for stretchability, biocompatibility, and self-powering. In the past few decades, great progress has been made in the discovery of ML materials, analysis of mechanisms, design of devices, and exploration of applications. One can find that with this progress, the focus of ML research has shifted from the phenomenon in the earliest stage to materials and recently toward devices. At the present stage, while showing great prospects for advanced stress sensing applications, ML-based sensing still faces major challenges in material optimization, device design, and system integration.

摘要

新应用的出现,如人工智能、物联网和生物技术,推动了压力感应技术的发展。对于这些新兴应用,可拉伸性、远程性、压力分布、多模态和生物相容性是压力传感器的重要性能特征。基于力学发光(ML)的压力传感因其远程性以及对机械刺激的分布式响应特性,以及在可拉伸性、生物相容性和自供电方面的巨大潜力而受到广泛关注。在过去的几十年中,在发现 ML 材料、分析机制、设计器件和探索应用方面取得了重大进展。人们可以发现,随着这一进展,ML 研究的重点已经从最早阶段的现象转移到了材料,最近又转移到了器件上。在现阶段,尽管在先进的压力感应应用方面显示出了巨大的前景,但基于 ML 的传感仍然在材料优化、器件设计和系统集成方面面临重大挑战。

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