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Sodium-ion batteries: present and future

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TLDR
Current research on materials is summarized and discussed and future directions for SIBs are proposed to provide important insights into scientific and practical issues in the development of S IBs.
Abstract
Energy production and storage technologies have attracted a great deal of attention for day-to-day applications. In recent decades, advances in lithium-ion battery (LIB) technology have improved living conditions around the globe. LIBs are used in most mobile electronic devices as well as in zero-emission electronic vehicles. However, there are increasing concerns regarding load leveling of renewable energy sources and the smart grid as well as the sustainability of lithium sources due to their limited availability and consequent expected price increase. Therefore, whether LIBs alone can satisfy the rising demand for small- and/or mid-to-large-format energy storage applications remains unclear. To mitigate these issues, recent research has focused on alternative energy storage systems. Sodium-ion batteries (SIBs) are considered as the best candidate power sources because sodium is widely available and exhibits similar chemistry to that of LIBs; therefore, SIBs are promising next-generation alternatives. Recently, sodiated layer transition metal oxides, phosphates and organic compounds have been introduced as cathode materials for SIBs. Simultaneously, recent developments have been facilitated by the use of select carbonaceous materials, transition metal oxides (or sulfides), and intermetallic and organic compounds as anodes for SIBs. Apart from electrode materials, suitable electrolytes, additives, and binders are equally important for the development of practical SIBs. Despite developments in electrode materials and other components, there remain several challenges, including cell design and electrode balancing, in the application of sodium ion cells. In this article, we summarize and discuss current research on materials and propose future directions for SIBs. This will provide important insights into scientific and practical issues in the development of SIBs.

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Active Materials for Aqueous Zinc Ion Batteries: Synthesis, Crystal Structure, Morphology, and Electrochemistry

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Research Development on K-Ion Batteries.

TL;DR: This review comprehensively covering the studies on electrochemical materials for KIBs, including electrode and electrolyte materials and a discussion on recent achievements and remaining/emerging issues includes insights into electrode reactions and solid-state ionics and nonaqueous solution chemistry.
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Present and Future Perspective on Electrode Materials for Rechargeable Zinc-Ion Batteries

TL;DR: In this article, the challenges and recent developments related to rechargeable zinc-ion battery research are presented, as well as recent research trends and directions on electrode materials that can store Zn2+ and electrolytes that can improve the battery performance.
References
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Journal ArticleDOI

Rechargeable Na/Na[sub x]CoO[sub 2] and Na[sub 15]Pb[sub 4]/Na[sub x]CoO[sub 2] polymer electrolyte cells

TL;DR: In this article, the authors used polyethylene oxide as a sodium ion conducting electrolyte, P2 phase as the positive electrode and either sodium or sodium/lead alloy as the negative electrode were assembled, discharged, and cycled.
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Humic acid as promising organic anodes for lithium/sodium ion batteries.

TL;DR: As a representative natural polymer with abundant functionalities, humic acid was creatively explored as an anode material for lithium ion batteries and sodium ion batteries with high storage capacities, and satisfactory cycling stabilities as discussed by the authors.
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Successive orbital ordering transitions in NaVO2.

TL;DR: Physical property measurements on samples of triangular-lattice NaVO2 reveal two successive orbital ordering transitions, which relieves the geometric frustration and leads to a magnetically ordered ground state.
Journal ArticleDOI

Iso-Oriented Anatase TiO2 Mesocages as a High Performance Anode Material for Sodium-Ion Storage.

TL;DR: CV measurements demonstrate that the sodium-ion storage process of anatase mesocages is mainly controlled by pseudocapacitive behavior, which is different from the lithium-ionstorage and further facilitates the high rate capability.
Journal ArticleDOI

Probing the Mechanism of Sodium Ion Insertion into Copper Antimony Cu2Sb Anodes

TL;DR: In this paper, the reaction mechanism of the intermetallic anode Cu2Sb with Na and demonstrate that it is capable of retaining about 250 mAh g−1 over 200 cycles when using fluoroethylene carbonate additive.
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