MXene Based Flame Retardant and Electrically Conductive Polymer Coatings

Author:

Lin Bo1ORCID,Li Ao1ORCID,De Cachinho Cordeiro Ivan Miguel1ORCID,Jia Ming23,Lee Yuan Xien1,Yuen Anthony Chun Yin4ORCID,Wang Cheng1ORCID,Wang Wei1ORCID,Yeoh Guan Heng15ORCID

Affiliation:

1. School of Mechanical and Manufacturing Engineering, University of New South Wales, Sydney, NSW 2052, Australia

2. Urban Mobility Institute, College of Transportation Engineering, Tongji University, 4800 Cao’an Rd, Shanghai 201804, China

3. Key Laboratory of Road and Traffic Engineering of the Ministry of Education, College of Transportation Engineering, Tongji University, 4800 Cao’an Rd, Shanghai 201804, China

4. Department of Building Environment and Energy Engineering, The Hong Kong Polytechnic University, Hung Hom, Kowloon, Hong Kong SAR, China

5. Australian Nuclear Science and Technology Organisation (ANSTO), Kirrawee DC, NSW 2232, Australia

Abstract

Modern polymer coatings possess tremendous multifunctionalities and have attracted immense research interest in recent decades. However, with the expeditious development of technologies and industries, there is a vast demand for the flame retardancy and electrical conductivity of engineered polymer coatings. Traditional functional materials that render the polymer coatings with these properties require a sophisticated fabrication process, and their high mass gains can be a critical issue for weight-sensitive applications. In recent years, massive research has been conducted on a newly emerged two-dimensional (2D) nanosize material family, MXene. Due to the excellent electrical conductivity, flame retardancy, and lightweightness, investigations have been launched to synthesise MXene-based polymer coatings. Consequently, we performed a step-by-step review of MXene-involved polymer coatings, from solely attaching MXene to the substrate surface to the multilayered coating of modified MXene with other components. This review examines the performances of the fire safety enhancement and electrical conductivity as well as the feasibility of the manufacturing procedures of the as-prepared polymer composites. Additionally, the fabricated polymer coatings’ dual property mechanisms are well-demonstrated. Finally, the prospect of MXene participating in polymer coatings to render flame retardancy and electrical conductivity is forecasted.

Funder

Australian Research Council/Discovery Early Career Researcher Award (DECRA) funding scheme

Australian Research Council/Industrial Transformation Research Hubs funding scheme

Publisher

MDPI AG

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