Chemistry - An Asian Journal

Effect of Carbon Nanomaterials Incorporated Polymeric Membrane Separators for Energy Storage Devices

Md Emdad Hossain 1
Emdad Hossain 2
Bashir Ahmed Johan 1, 2
Syed Shaheen Shah 3
Syed Shaheen Shah 4
Muaz Abdallah 1, 2
Mohammad Mizanur Rahman 5, 6
Turki Nabieh Baroud 1, 2, 7
Md. Abdul Aziz 8
Show full list: 9 authors
2
 
Materials Science and Engineering Department King Fahd University of Petroleum & Minerals KFUPM Box 5040 Dhahran 31261 Saudi Arabia
6
 
Interdisciplinary Research Center for Advanced Materials King Fahd University of Petroleum & Minerals, KFUPM Box 5040 Dhahran 31261 Saudi Arabia
7
 
Interdisciplinary Research Centre for Membranes and Water Security King Fahd University of Petroleum & Minerals, KFUPM Box 5040 Dhahran 31261 Saudi Arabia
8
 
Interdisciplinary Research Center for Hydrogen Technologies and Carbon Management (IRC-HTCM) King Fahd University of Petroleum & Minerals, KFUPM, Box 5040 Dhahran 31261 Saudi Arabia
Publication typeJournal Article
Publication date2025-03-21
scimago Q1
SJR0.846
CiteScore7.0
Impact factor3.5
ISSN18614728, 1861471X
Abstract

The rapid expansion of the global population and technological advancements have heightened the need for efficient energy conversion and electrochemical energy storage. Electrochemical energy systems like batteries and supercapacitors have seen notable developments to meet this demand. However, conventional polymeric membrane separators in these systems face challenges due to limited porosity and poor mechanical and thermal properties, reducing overall electrochemical performance. Researchers have incorporated nanoparticles into the polymer matrix to address these limitations and enhance separator properties. Carbon‐based nanomaterials, in particular, have gained prominence due to their unique features, such as surface‐dependent characteristics, size, porosity, morphology, and electrical conductivity. These properties make carbon‐based nanomaterials advantageous in improving energy storage compared to conventional materials. Advanced carbon‐doped polymeric membrane separators have emerged as a potential solution to the issues faced by conventional separators. Adding carbon nanoparticles, such as graphene‐based materials and carbon nanotubes to the polymeric separators of batteries and supercapacitors has helped researchers solve problems and improve electrochemical performance. This review article provides a state‐of‐the‐art overview of carbon‐doped polymeric membrane separators, their properties, fabrication processes, and performance in lithium batteries, as well as supercapacitors. It emphasizes advantages of these novel separator materials and suggests future research directions in this field.

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