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基于丝素蛋白的柔性电子学的最新进展。

Recent progress in silk fibroin-based flexible electronics.

作者信息

Wen Dan-Liang, Sun De-Heng, Huang Peng, Huang Wen, Su Meng, Wang Ya, Han Meng-Di, Kim Beomjoon, Brugger Juergen, Zhang Hai-Xia, Zhang Xiao-Sheng

机构信息

School of Electronic Science and Engineering, University of Electronic Science and Technology of China, Chengdu, 611731 China.

CIRMM, Institute of Industrial Science, The University of Tokyo, Tokyo, 153-8505 Japan.

出版信息

Microsyst Nanoeng. 2021 May 6;7:35. doi: 10.1038/s41378-021-00261-2. eCollection 2021.

Abstract

With the rapid development of the Internet of Things (IoT) and the emergence of 5G, traditional silicon-based electronics no longer fully meet market demands such as nonplanar application scenarios due to mechanical mismatch. This provides unprecedented opportunities for flexible electronics that bypass the physical rigidity through the introduction of flexible materials. In recent decades, biological materials with outstanding biocompatibility and biodegradability, which are considered some of the most promising candidates for next-generation flexible electronics, have received increasing attention, e.g., silk fibroin, cellulose, pectin, chitosan, and melanin. Among them, silk fibroin presents greater superiorities in biocompatibility and biodegradability, and moreover, it also possesses a variety of attractive properties, such as adjustable water solubility, remarkable optical transmittance, high mechanical robustness, light weight, and ease of processing, which are partially or even completely lacking in other biological materials. Therefore, silk fibroin has been widely used as fundamental components for the construction of biocompatible flexible electronics, particularly for wearable and implantable devices. Furthermore, in recent years, more attention has been paid to the investigation of the functional characteristics of silk fibroin, such as the dielectric properties, piezoelectric properties, strong ability to lose electrons, and sensitivity to environmental variables. Here, this paper not only reviews the preparation technologies for various forms of silk fibroin and the recent progress in the use of silk fibroin as a fundamental material but also focuses on the recent advanced works in which silk fibroin serves as functional components. Additionally, the challenges and future development of silk fibroin-based flexible electronics are summarized. (1) This review focuses on silk fibroin serving as active functional components to construct flexible electronics. (2) Recent representative reports on flexible electronic devices that applied silk fibroin as fundamental supporting components are summarized. (3) This review summarizes the current typical silk fibroin-based materials and the corresponding advanced preparation technologies. (4) The current challenges and future development of silk fibroin-based flexible electronic devices are analyzed.

摘要

随着物联网(IoT)的快速发展和5G的出现,由于机械不匹配,传统的硅基电子产品已无法完全满足非平面应用场景等市场需求。这为通过引入柔性材料来规避物理刚性的柔性电子产品提供了前所未有的机遇。近几十年来,具有出色生物相容性和生物降解性的生物材料受到了越来越多的关注,它们被认为是下一代柔性电子产品最有前途的候选材料之一,例如丝素蛋白、纤维素、果胶、壳聚糖和黑色素。其中,丝素蛋白在生物相容性和生物降解性方面具有更大的优势,此外,它还具有多种吸引人的特性,如可调的水溶性、显著的光学透明度、高机械强度、重量轻以及易于加工,而这些特性在其他生物材料中部分甚至完全缺失。因此,丝素蛋白已被广泛用作构建生物相容性柔性电子产品的基本组件,特别是用于可穿戴和植入式设备。此外,近年来,人们对丝素蛋白的功能特性研究给予了更多关注,如介电性能、压电性能、强失电子能力以及对环境变量的敏感性。在此,本文不仅综述了各种形式丝素蛋白的制备技术以及将丝素蛋白用作基础材料的最新进展,还重点介绍了丝素蛋白作为功能组件的近期先进研究成果。此外,总结了基于丝素蛋白的柔性电子产品面临的挑战和未来发展。(1)本综述重点关注丝素蛋白作为活性功能组件构建柔性电子产品。(2)总结了近期将丝素蛋白用作基础支撑组件的柔性电子器件的代表性报道。(3)本综述总结了当前典型的基于丝素蛋白的材料及相应的先进制备技术。(4)分析了基于丝素蛋白的柔性电子器件当前面临的挑战和未来发展。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/36db/8433308/60c7e69b95a0/41378_2021_261_Figa_HTML.jpg

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