Fundamentals and key components of sodium-ion batteries: Challenges and future perspectives

Energy storage systems play a pivotal role in modern society by addressing the intermittent nature of renewable energy sources and enhancing grid stability. Among these systems, rechargeable batteries stand out as a key technology to provide efficient and portable energy storage solutions. As a buff...

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Main Authors: Suntharam N.M., Bashir S., B V., Rahim N.A., S R., Ramesh S., Ramesh K., Prasankumar T.
Other Authors: 58761135100
Format: Review
Published: Elsevier Ltd 2025
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spelling my.uniten.dspace-361032025-03-03T15:41:23Z Fundamentals and key components of sodium-ion batteries: Challenges and future perspectives Suntharam N.M. Bashir S. B V. Rahim N.A. S R. Ramesh S. Ramesh K. Prasankumar T. 58761135100 56978832100 57195515243 57202054554 59366125100 41061958200 57220754709 57191483300 Buffer storage Iron compounds Lithium compounds Lithium-ion batteries Mercury compounds Palladium compounds Potassium compounds Sodium compounds Transition metal oxides Tungsten compounds Advanced characterization Anode material Cathodes material Electrical energy Electrode material Energy Future perspectives Performance Sodium ion batteries Storage systems Sodium-ion batteries Energy storage systems play a pivotal role in modern society by addressing the intermittent nature of renewable energy sources and enhancing grid stability. Among these systems, rechargeable batteries stand out as a key technology to provide efficient and portable energy storage solutions. As a buffer to balance variations in supply and demand, rechargeable batteries store electrical energy during times of surplus generation or low demand and release it when needed. These batteries are made up of electrochemical cells, which store and release electrical energy through reversible processes. A common type of rechargeable battery is lithium-ion battery (LIB) which is widely utilized in portable electronics and electric vehicles. But the expense and scarcity of lithium supplies forced scientists to investigate other materials, which brought them to study sodium-ion chemistry, reflecting a pursuit for development of alternative sodium-ion batteries (SIBs). The advent of SIBs represents a paradigm change in the field of energy storage, showcasing creativity and flexibility in response to the changing needs of a more sustainable and easily obtainable energy supply. Here, electrodes act as crucial element in SIBs and therefore, electrodes must be developed with high compatibility and stability to ensure good performance in SIBs. Recently, transition metal oxides, Prussian blue analogues, polyanionic compounds and organic materials have been investigated as cathode materials for SIBs. In unison, latest progressions have been done to fabricate many anode materials such as carbon-based materials, alloy-based compounds, MXenes, metal oxides and sulfides and organic compounds. Concurrently, many modifications have been made to enhance the performance and stability of electrode materials in the battery systems. Apart from that, many electrolytes have been widely investigated for SIBs to enhance the performance, efficiency and safety features. To give insights into the structures and morphologies of the electrode materials as well as the electrochemical performance of the systems, various advanced characterization techniques have also been reviewed. In this article, we have outlined and exchanged views on the research materials that have been explored and proposed future perspectives for SIBs. This review offers crucial insights into practical and scientific problems related to the evolution of SIBs. ? 2024 Elsevier Ltd Final 2025-03-03T07:41:23Z 2025-03-03T07:41:23Z 2024 Review 10.1016/j.mtchem.2024.102350 2-s2.0-85206300766 https://www.scopus.com/inward/record.uri?eid=2-s2.0-85206300766&doi=10.1016%2fj.mtchem.2024.102350&partnerID=40&md5=5ed22d2c33074e94cabe479c3a931d20 https://irepository.uniten.edu.my/handle/123456789/36103 42 102350 Elsevier Ltd Scopus
institution Universiti Tenaga Nasional
building UNITEN Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Tenaga Nasional
content_source UNITEN Institutional Repository
url_provider http://dspace.uniten.edu.my/
topic Buffer storage
Iron compounds
Lithium compounds
Lithium-ion batteries
Mercury compounds
Palladium compounds
Potassium compounds
Sodium compounds
Transition metal oxides
Tungsten compounds
Advanced characterization
Anode material
Cathodes material
Electrical energy
Electrode material
Energy
Future perspectives
Performance
Sodium ion batteries
Storage systems
Sodium-ion batteries
spellingShingle Buffer storage
Iron compounds
Lithium compounds
Lithium-ion batteries
Mercury compounds
Palladium compounds
Potassium compounds
Sodium compounds
Transition metal oxides
Tungsten compounds
Advanced characterization
Anode material
Cathodes material
Electrical energy
Electrode material
Energy
Future perspectives
Performance
Sodium ion batteries
Storage systems
Sodium-ion batteries
Suntharam N.M.
Bashir S.
B V.
Rahim N.A.
S R.
Ramesh S.
Ramesh K.
Prasankumar T.
Fundamentals and key components of sodium-ion batteries: Challenges and future perspectives
description Energy storage systems play a pivotal role in modern society by addressing the intermittent nature of renewable energy sources and enhancing grid stability. Among these systems, rechargeable batteries stand out as a key technology to provide efficient and portable energy storage solutions. As a buffer to balance variations in supply and demand, rechargeable batteries store electrical energy during times of surplus generation or low demand and release it when needed. These batteries are made up of electrochemical cells, which store and release electrical energy through reversible processes. A common type of rechargeable battery is lithium-ion battery (LIB) which is widely utilized in portable electronics and electric vehicles. But the expense and scarcity of lithium supplies forced scientists to investigate other materials, which brought them to study sodium-ion chemistry, reflecting a pursuit for development of alternative sodium-ion batteries (SIBs). The advent of SIBs represents a paradigm change in the field of energy storage, showcasing creativity and flexibility in response to the changing needs of a more sustainable and easily obtainable energy supply. Here, electrodes act as crucial element in SIBs and therefore, electrodes must be developed with high compatibility and stability to ensure good performance in SIBs. Recently, transition metal oxides, Prussian blue analogues, polyanionic compounds and organic materials have been investigated as cathode materials for SIBs. In unison, latest progressions have been done to fabricate many anode materials such as carbon-based materials, alloy-based compounds, MXenes, metal oxides and sulfides and organic compounds. Concurrently, many modifications have been made to enhance the performance and stability of electrode materials in the battery systems. Apart from that, many electrolytes have been widely investigated for SIBs to enhance the performance, efficiency and safety features. To give insights into the structures and morphologies of the electrode materials as well as the electrochemical performance of the systems, various advanced characterization techniques have also been reviewed. In this article, we have outlined and exchanged views on the research materials that have been explored and proposed future perspectives for SIBs. This review offers crucial insights into practical and scientific problems related to the evolution of SIBs. ? 2024 Elsevier Ltd
author2 58761135100
author_facet 58761135100
Suntharam N.M.
Bashir S.
B V.
Rahim N.A.
S R.
Ramesh S.
Ramesh K.
Prasankumar T.
format Review
author Suntharam N.M.
Bashir S.
B V.
Rahim N.A.
S R.
Ramesh S.
Ramesh K.
Prasankumar T.
author_sort Suntharam N.M.
title Fundamentals and key components of sodium-ion batteries: Challenges and future perspectives
title_short Fundamentals and key components of sodium-ion batteries: Challenges and future perspectives
title_full Fundamentals and key components of sodium-ion batteries: Challenges and future perspectives
title_fullStr Fundamentals and key components of sodium-ion batteries: Challenges and future perspectives
title_full_unstemmed Fundamentals and key components of sodium-ion batteries: Challenges and future perspectives
title_sort fundamentals and key components of sodium-ion batteries: challenges and future perspectives
publisher Elsevier Ltd
publishDate 2025
_version_ 1825816012904202240
score 13.244109