Literature DB >> 34252892

Self-adhesive and contractile silk fibroin/graphene nano-ionotronic skin for strain sensing of irregular surfaces.

Shaojun Dong1,2,3, Yuehua Zhang1, Bin Li1,2,3, Jing Ren1, Shengjie Ling1, Leitao Cao1.   

Abstract

Nanofiber-based artificial skin has shown promise for application in flexible wearable electronics due to its favorable breathability and comfortable wearability. However, the electrospinning method commonly used for nanofiber preparation suffers from poor spinning performance when used for ionotronic solutions. Moreover, the resulting membrane usually lacks self-adhesive and self-adapting properties when it is attached to an irregular subject, which greatly hinders its practical usage. Herein, a self-adhesive and contractile silk fibroin/graphene nano-ionotronic skin was successfully prepared using a high-yield electro-blowing technique. The electro-blowing technique was able to effectively overcome the instability of the spinning jet and raise the feed rate to at least 5 ml h-1. The high Ca2+content provided the fabricated nano-ionotronic skin with humidity-induced stretchability and robusticity. More importantly, the ionotronic skin also possessed a self-adhesive property and was able to contract to adapt to irregular surfaces. Additionally, an analytical piezoresistive model was successfully built to predict the response of the sensors to stress. Furthermore, due to its stable conductivity, sensitivity, and self-adapting property, the obtained nano-ionotronic skin can be used for body monitoring, for example, for bending of the arm and hand gestures. The design and manufacture concept proposed in this work might inspire the development of high-yield ionotronic nanofibers and the design of self-adapting artificial skin.
© 2021 IOP Publishing Ltd.

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Keywords:  electro-blown spinning; ionotronic skin; nanofiber; silk fibroin

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Year:  2021        PMID: 34252892     DOI: 10.1088/1361-6528/ac137e

Source DB:  PubMed          Journal:  Nanotechnology        ISSN: 0957-4484            Impact factor:   3.874


  1 in total

1.  An ultrasensitive and stretchable strain sensor based on a microcrack structure for motion monitoring.

Authors:  Hao Sun; Xudong Fang; Ziyan Fang; Libo Zhao; Bian Tian; Prateek Verma; Ryutaro Maeda; Zhuangde Jiang
Journal:  Microsyst Nanoeng       Date:  2022-09-29       Impact factor: 8.006

  1 in total

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