Self‐Adhesive Polydimethylsiloxane Foam Materials Decorated with MXene/Cellulose Nanofiber Interconnected Network for Versatile Functionalities

Author:

Chen Hai‐Yang1,Chen Zuan‐Yu1,Mao Min12,Wu Yu‐Yue1,Yang Fan1,Gong Li‐Xiu1,Zhao Li1,Cao Cheng‐Fei3,Song Pingan34,Gao Jie‐Feng5,Zhang Guo‐Dong1,Shi Yong‐Qian6,Cao Kun7,Tang Long‐Cheng1ORCID

Affiliation:

1. College of Material Chemistry and Chemical Engineering, Key Laboratory of Organosilicon Chemistry and Material Technology of MoE Hangzhou Normal University Hangzhou 311121 China

2. Laboratory and Equipment Management Office Nanjing Normal University Nanjing 210023 China

3. Centre for Future Materials University of Southern Queensland Springfield 4300 Australia

4. School of Agriculture and Environmental Science University of Southern Queensland Springfield 4300 Australia

5. College of Chemistry and Chemical Engineering Yangzhou University Yangzhou Jiangsu 225002 China

6. College of Environment and Safety Engineering Fuzhou University Fuzhou 350116 China

7. State Key Laboratory of Chemical Engineering, College of Chemical and Biological Engineering Zhejiang University Hangzhou 310027 China

Abstract

AbstractPolydimethylsiloxanes (PDMS) foam as one of next‐generation polymer foam materials shows poor surface adhesion and limited functionality, which greatly restricts its potential applications. Fabrication of advanced PDMS foam materials with multiple functionalities remains a critical challenge. In this study, unprecedented self‐adhesive PDMS foam materials are reported with worm‐like rough structure and reactive groups for fabricating multifunctional PDMS foam nanocomposites decorated with MXene/cellulose nanofiber (MXene/CNF) interconnected network by a facile silicone foaming and dip‐coating strategy followed by silane surface modification. Interestingly, such self‐adhesive PDMS foam produces strong interfacial adhesion with the hybrid MXene/CNF nano‐coatings. Consequently, the optimized PDMS foam nanocomposites have excellent surface super‐hydrophobicity (water contact angle of ≈159o), tunable electrical conductivity (from 10−8 to 10 S m−1), stable compressive cyclic reliability in both wide‐temperature range (from −20 to 200 oC) and complex environments (acid, sodium, and alkali conditions), outstanding flame resistance (LOI value of >27% and low smoke production rate), good thermal insulating performance and reliable strain sensing in various stress modes and complex environmental conditions. It provides a new route for the rational design and development of advanced PDMS foam nanocomposites with versatile multifunctionalities for various promising applications such as intelligent healthcare monitoring and fire‐safe thermal insulation.

Funder

National Natural Science Foundation of China

Publisher

Wiley

Subject

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

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