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Abstract

Displays are basic building blocks of modern electronics1,2. Integrating displays into textiles offers exciting opportunities for smart electronic textiles-the ultimate goal of wearable technology, poised to change the way in which we interact with electronic devices3-6. Display textiles serve to bridge human-machine interactions7-9, offering, for instance, a real-time communication tool for individuals with voice or speech difficulties. Electronic textiles capable of communicating10, sensing11,12 and supplying electricity13,14 have been reported previously. However, textiles with functional, large-area displays have not yet been achieved, because it is challenging to obtain small illuminating units that are both durable and easy to assemble over a wide area. Here we report a 6-metre-long, 25-centimetre-wide display textile containing 5 x 105 electroluminescent units spaced approximately 800 micrometres apart. Weaving conductive weft and luminescent warp fibres forms micrometre-scale electroluminescent units at the weft-warp contact points. The brightness between electroluminescent units deviates by less than 8 per cent and remains stable even when the textile is bent, stretched or pressed. Our display textile is flexible and breathable and withstands repeated machine-washing, making it suitable for practical applications. We show that an integrated textile system consisting of display, keyboard and power supply can serve as a communication tool, demonstrating the system's potential within the 'internet of things' in various areas, including healthcare. Our approach unifies the fabrication and function of electronic devices with textiles, and we expect that woven-fibre materials will shape the next generation of electronics.

Details

Title
Large-area display textiles integrated with functional systems
Author
Shi, Xiang 1 ; Zuo, Yong 1 ; Zhai, Peng 2 ; Shen, Jiahao 3 ; Yang, Yangyiwei 4 ; Gao, Zhen; Liao, Meng; Wu, Jingxia; Wang, Jiawei; Xu, Xiaojie; Tong, Qi; Zhang, Bo; Wang, Bingjie; Sun, Xuemei; Zhang, Lihua; Pei, Qibing; Jin, Dayong; Chen, Peining; Peng, Huisheng

 State Key Laboratory of Molecular Engineering of Polymers, Fudan University, Shanghai, China 
 The Institute of AI and Robotics, Fudan University, Shanghai, China 
 Department of Aeronautics and Astronautics, Fudan University, Shanghai, China 
 Mechanics of Functional Materials Division, Institute of Materials Science, Technische Universität Darmstadt, Darmstadt, Germany 
Pages
240-245,245A-245N
Section
Article
Publication year
2021
Publication date
Mar 11, 2021
Publisher
Nature Publishing Group
ISSN
00280836
e-ISSN
14764687
Source type
Scholarly Journal
Language of publication
English
ProQuest document ID
2502299241
Copyright
Copyright Nature Publishing Group Mar 11, 2021