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超疏水导电材料:体系设计、工艺调整及应用前景

Superhydrophobic Conductive Materials: System Design, Processing Adjustment, and Promising Applications.

作者信息

Zhou Meng, Zhu Ling, Chen Shuai, An Siying, Liang Lishan, Cao Yuqing, Fang Jie, Qiao Yongluo

机构信息

Flexible Electronics Innovation Institute and School of Pharmacy, Jiangxi Science and Technology Normal University, Nanchang 330013, Jiangxi, China.

Jiangxi Provincial Key Laboratory of Flexible Electronics, Jiangxi Science and Technology Normal University, Nanchang 330013, Jiangxi, China.

出版信息

ACS Appl Mater Interfaces. 2025 Jul 9;17(27):38817-38847. doi: 10.1021/acsami.5c06505. Epub 2025 Jun 25.

Abstract

The working efficiency, reliability, and stability of electronic materials and devices in real environments often face challenges from humid conditions, aging, mildew, chemical damage (especially corrosion), and physical damage (like freezing and abrasion). To address these issues, endowing conductive materials with bionic superhydrophobicity offers promising solutions by providing them with wet-resistant, antifreezing, anticorrosion, antifouling, and other functions. Through different methods including immersion, coating, spraying, solvothermal reaction, and layer-by-layer (LBL) self-assembly, etching and screen printing, etc., superhydrophobic conductive materials (SCMs) exhibiting surface wettability with contact angles exceeding 150° and typical electrical conductivity over 10 S/cm level, have been processed into various forms such as coatings, films, foams, aerogels, elastomer and so on. They have realized utilization not only in traditional domains like waterproofing, deicing, self-cleaning, oil/water separation, anticorrosion, electromagnetic interference shielding (EIS), sensors, and solar cells but also in emerging fields such as wearable and biomedical electronics. Herein, this review offers a comprehensive and systematic overview of promising research progress in this field. Specially, the challenge of the design and adjustment of the competitive dual functions in relation to the composition of various conductive fillers (metals, carbon-based materials, CPs, MXenes, etc.) and hydrophobic materials (polymers, fabrics, rubbers, metals, etc.) together with diverse processing and surface treating strategies is highly emphasized. Their significant potential for application in devices in line with diverse scenarios to realize multiple functions or long-term operating reliability is discussed in detail. Further exploration of surface-interface tuning mechanisms and material systems, with the assistance of artificial intelligence (AI), additive manufacturing, etc., is planned to pave the way for more innovative applications across interdisciplinary fields. This review could also give insights into facing the challenge of endowing superhydrophobic materials with other photoelectromagnetic functionalities.

摘要

电子材料和器件在实际环境中的工作效率、可靠性和稳定性常常面临来自潮湿环境、老化、发霉、化学损伤(尤其是腐蚀)以及物理损伤(如冻结和磨损)等方面的挑战。为了解决这些问题,赋予导电材料仿生超疏水性通过为其提供防潮、防冻、防腐、防污等功能提供了有前景的解决方案。通过浸涂、喷涂、溶剂热反应、层层(LBL)自组装、蚀刻和丝网印刷等不同方法,已将接触角超过150°且典型电导率超过10 S/cm水平的超疏水导电材料(SCMs)加工成涂层、薄膜、泡沫、气凝胶、弹性体等各种形式。它们不仅在防水、除冰、自清洁、油水分离、防腐、电磁干扰屏蔽(EIS)、传感器和太阳能电池等传统领域得到应用,还在可穿戴和生物医学电子等新兴领域实现了应用。在此,本综述对该领域有前景的研究进展进行了全面系统的概述。特别强调了在各种导电填料(金属、碳基材料、导电聚合物、MXenes等)和疏水材料(聚合物、织物、橡胶、金属等)的组成以及不同的加工和表面处理策略方面,设计和调节竞争双重功能所面临的挑战。详细讨论了它们在符合不同场景的器件中实现多种功能或长期运行可靠性的巨大应用潜力。计划借助人工智能(AI)、增材制造等进一步探索表面-界面调控机制和材料体系,为跨学科领域的更多创新应用铺平道路。本综述还可为应对赋予超疏水材料其他光电磁功能所面临的挑战提供见解。

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