Cellulose Gel Mechanoreceptors – Principles, Applications and Prospects

Author:

Shen Xiaoping1ORCID,Zhao Dawei2ORCID,Xie Yanjun3ORCID,Wang Qingwen4ORCID,Shamshina Julia L.5ORCID,Rogers Robin D.67ORCID,Sun Qingfeng1ORCID

Affiliation:

1. College of Chemistry and Materials Engineering Zhejiang A&F University Hangzhou 311300 China

2. Institute of Industrial Chemistry and Energy Technology Shenyang University of Chemical Technology Shenyang 110142 China

3. College of Material Science and Engineering Northeast Forestry University Harbin 150040 China

4. College of Materials and Energy South China Agricultural University Guangzhou 510642 China

5. Fiber and Biopolymer Research Institute Department of Plant and Soil Science Texas Tech University Lubbock TX 79409 USA

6. 525 Solutions, Inc. PO Box 2206 Tuscaloosa AL 35403 USA

7. College of Arts & Sciences Department of Chemistry The University of Alabama Tuscaloosa AL 35487 USA

Abstract

AbstractIn order to effectively harness varieties of mechanical waves or vibrations for the purpose of monitoring and/or powering, developments in responsive materials and conversion technologies are taking place driven by the world's current and future demands. One of the most popular novelties of the last two decades is represented by hydrogel‐ or ionogel‐based flexible iontronics which constitute a wide family of innovative smart (self‐powered) mechanoreceptors relevant for various applications such as personal health care, identity and safety monitoring, intelligent human‐machine operation interfaces, underwater listening and communication, and so on. Cellulosic gels (CGs), as a promising green substitute for fossil fuel‐derived materials, are extensively studied due to the possibility to choose between different cellulose types and to formulate networks chemically or physically, according to the adaptability requirements for each target application. The aim of this review is to showcase the cellulose structural versatility and to provide a summary of the principles during the formulation of CGs used for mechanosensing and mechanical energy scavenging, as well as their practical applications. Such an outlook of current challenges and overall prospects will serve as a stimulus for research on CG‐based mechanoreceptors in the future.

Funder

National Natural Science Foundation of China

Scientific Research Foundation of Zhejiang A and F University

Publisher

Wiley

Subject

Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials

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