Application Scopes of Miniaturized MXene‐Functionalized Electrospun Nanofibers‐Based Electrochemical Energy Devices

Author:

Khademolqorani Sanaz12,Banitaba Seyedeh Nooshin23,Gupta Ashish4,Poursharifi Nazanin1,Ghaffari Ali Akbar5,Jadhav Vijaykumar V.678,Arifeen Waqas Ul9,Singh Mandeep4,Borah Munu10,Chamanehpour Elham1112,Mishra Yogendra Kumar12ORCID

Affiliation:

1. Department of Textile Engineering Isfahan University of Technology Isfahan 84156‐83111 Iran

2. Emerald Experts Laboratory Isfahan Science and Technology Town Isfahan 84156‐83111 Iran

3. Department of Textile Engineering Amirkabir University of Technology Tehran 159163‐4311 Iran

4. CSIR‐National Physical Laboratory New Delhi 110012 India

5. School of Chemistry College of Science University of Tehran Tehran 14155 Iran

6. Guangdong Provincial Key Laboratory of Materials and Technologies for Energy Conversion 241 Daxue Road Shantou 515063 China

7. Department of Materials Science and Engineering Technion‐Israel Institute of Technology Haifa 3200003 Israel

8. Department of Material Science and Engineering Guangdong Technion Israel Institute of Technology 241 Daxue Road Shantou Guangdong 515063 China

9. School of Mechanical Engineering Yeungnam University 280 Daehak‐ro, Gyeongsan‐si Gyeongsangbuk‐do 38541 South Korea

10. Department of Physics School of Basic Sciences Kaziranga University Jorhat 785006 India

11. Department of Environmental Engineering Faculty of Natural Resources and Environment University of Birjand Birjand 9717434765 Iran

12. Mads Clausen Institute Smart Materials University of Southern Denmark Alsion 2 Sønderborg 6400 Denmark

Abstract

AbstractExploring combinatorial materials, as well as rational device configuration design, are assumed to be the key strategies for deploying versatile electrochemical devices. MXene sheets have revealed a high hydrophilic surface with proper mechanical and electrical characteristics, rendering them supreme additive candidates to integrate in electrospun electrochemical power tools. The synergetic effects of MXene 2D layers with the nanofibrous networks can boost actuator responsive ability, battery capacity retention, fuel cell stability, sensor sensitivity, and supercapacitor areal capacitance. Their superior mechanical features can be endowed to the electrospun layers through the embedding of the MXene additive. In this review, the preparation and inherent features of the MXene configurations are briefly evaluated. The fabrication and overall performance of the MXene‐loaded nanofibers applicable in electrochemical actuators, batteries, fuel cells, sensors, and supercapacitors are comprehensively figured out. Eventually, an outlook on the future development of MXene‐based electrospun composites is presented. A substantial focus has been devoted to date to engineering conjugated MXene and electrospun fibrous frames. The potential performance of the MXene‐decorated nanofibers presents a bright future of nanoengineering toward technological growth. Meanwhile, a balance between the pros and cons of the synthesized MXene composite layers is worthwhile to consider in the future.

Funder

European Regional Development Fund

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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