Electrospinning research and products: The road and the way forward

Author:

Al-Dhahebi Adel Mohammed12ORCID,Ling JinKiong34ORCID,Krishnan Syam G.56ORCID,Yousefzadeh Maryam7ORCID,Elumalai Naveen Kumar8ORCID,Saheed Mohamed Shuaib Mohamed12ORCID,Ramakrishna Seeram9ORCID,Jose Rajan34ORCID

Affiliation:

1. Department of Mechanical Engineering, Universiti Teknologi PETRONAS, 32610 Seri Iskandar, Perak, Malaysia

2. Center of Innovative Nanostructures and Nanodevices, Universiti Teknologi PETRONAS, 32610 Seri Iskandar, Perak, Malaysia

3. Center of Advanced Intelligent Materials, Universiti Malaysia Pahang, 26300 Kuantan, Pahang Darul Makmur, Malaysia

4. Faculty of Industrial Sciences and Technology, Universiti Malaysia Pahang, 26300 Kuantan, Pahang Darul Makmur, Malaysia

5. Graphene and Advanced 2D Material Research Group, School of Engineering and Technology, Sunway University, No. 5 Jalan Universiti, Bandar Sunway, 47500 Petaling Jaya, Selangor, Malaysia

6. Sustainable Energy Materials Lab, School of Chemistry and Physics, Queensland University of Technology (QUT), 2 George Street, Brisbane, Queensland 4001, Australia

7. Department of Textile Engineering, Amirkabir University of Technology (Tehran Polytechnic), Tehran 1591634311, Iran

8. Energy and Resources Institute, College of Engineering, Information Technology and Environment, Charles Darwin University, Darwin, Northern Territory 0909, Australia

9. Center of Nanotechnology and Sustainability, National University of Singapore, Singapore

Abstract

Electrospinning is one of the most accessed nanofabrication techniques during the last three decades, attributed to its viability for the mass production of continuous nanofibers with superior properties from a variety of polymers and polymeric composites. Large investments from various sectors have pushed the development of electrospinning industrial setups capable of producing nanofibers in millions of kilograms per year for several practical applications. Herein, the lessons learned over three decades of research, innovations, and designs on electrospinning products are discussed in detail. The historical developments, engineering, and future opportunities of electrospun nanofibers (ESNFs) are critically addressed. The laboratory-to-industry transition gaps for electrospinning technology and ESNFs products, the potential of electrospun nanostructured materials for various applications, and academia-industry comparison are comprehensively analyzed. The current challenges and future trends regarding the use of this technology to fabricate promising nano/macro-products are critically demonstrated. We show that future research on electrospinning should focus on theoretical and technological developments to achieve better maneuverability during large-scale fiber formation, redesigning the electrospinning process around decarbonizing the materials processing to align with the sustainability agenda and the integration of electrospinning technology with the tools of intelligent manufacturing and IR 4.0.

Funder

Universiti Teknologi Petronas

Kementerian Pendidikan Malaysia

Universiti Malaysia Pahang

Sunway University

Publisher

AIP Publishing

Subject

General Physics and Astronomy

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