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可穿戴传感器中的耐用超疏水表面:从自然到应用

Durable superhydrophobic surface in wearable sensors: From nature to application.

作者信息

Dai Ziyi, Lei Ming, Ding Sen, Zhou Qian, Ji Bing, Wang Mingrui, Zhou Bingpu

机构信息

Joint Key Laboratory of the Ministry of Education Institute of Applied Physics and Materials Engineering University of Macau Avenida da Universidade Taipa Macau China.

State Key Laboratory of Crystal Materials Institute of Novel Semiconductors School of Microelectronics Shandong University Jinan China.

出版信息

Exploration (Beijing). 2023 Nov 8;4(2):20230046. doi: 10.1002/EXP.20230046. eCollection 2024 Apr.

Abstract

The current generation of wearable sensors often experiences signal interference and external corrosion, leading to device degradation and failure. To address these challenges, the biomimetic superhydrophobic approach has been developed, which offers self-cleaning, low adhesion, corrosion resistance, anti-interference, and other properties. Such surfaces possess hierarchical nanostructures and low surface energy, resulting in a smaller contact area with the skin or external environment. Liquid droplets can even become suspended outside the flexible electronics, reducing the risk of pollution and signal interference, which contributes to the long-term stability of the device in complex environments. Additionally, the coupling of superhydrophobic surfaces and flexible electronics can potentially enhance the device performance due to their large specific surface area and low surface energy. However, the fragility of layered textures in various scenarios and the lack of standardized evaluation and testing methods limit the industrial production of superhydrophobic wearable sensors. This review provides an overview of recent research on superhydrophobic flexible wearable sensors, including the fabrication methodology, evaluation, and specific application targets. The processing, performance, and characteristics of superhydrophobic surfaces are discussed, as well as the working mechanisms and potential challenges of superhydrophobic flexible electronics. Moreover, evaluation strategies for application-oriented superhydrophobic surfaces are presented.

摘要

当前一代可穿戴传感器经常遭遇信号干扰和外部腐蚀,导致设备性能下降和故障。为应对这些挑战,人们开发了仿生超疏水方法,该方法具有自清洁、低粘附性、耐腐蚀、抗干扰等特性。此类表面具有分级纳米结构和低表面能,与皮肤或外部环境的接触面积更小。液滴甚至可以悬浮在柔性电子器件外部,降低污染和信号干扰风险,这有助于设备在复杂环境中的长期稳定性。此外,超疏水表面与柔性电子器件的耦合因其大比表面积和低表面能,有可能提高设备性能。然而,各种场景下分层纹理的脆弱性以及缺乏标准化的评估和测试方法限制了超疏水可穿戴传感器的工业化生产。本文综述了超疏水柔性可穿戴传感器的近期研究,包括制造方法、评估和具体应用目标。讨论了超疏水表面的加工、性能和特性,以及超疏水柔性电子器件的工作机制和潜在挑战。此外,还介绍了面向应用的超疏水表面的评估策略。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fe18/11022629/572ff0ffdc37/EXP2-4-20230046-g005.jpg

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