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Magnesium ion-conducting gel polymer electrolytes dispersed with fumed silica for rechargeable magnesium battery application

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TLDR
In this article, the effect of fumed silica dispersion on poly(vinylidene fluoride-co-hexafluoropropylene)-based magnesium ion-conducting gel polymer electrolyte has been studied using various physical and electrochemical techniques.
Abstract
Effect of fumed silica dispersion on poly(vinylidene fluoride-co-hexafluoropropylene)-based magnesium ion-conducting gel polymer electrolyte has been studied using various physical and electrochemical techniques. The composite gel electrolytes are free-standing and flexible films with enough mechanical strength. The optimized composition with 3 wt.% filler offers a maximum ionic conductivity of ∼1.1 × 10−2 S cm−1 at ∼25 °C with good thermal and electrochemical stabilities. The Mg2+ ion conduction in the gel nanocomposite film is confirmed from the cyclic voltammetry, impedance spectroscopy, and transport number measurements. The space-charge layers formed between filler particles and gel electrolyte are responsible for the enhancement in ionic conductivity. The applicability of the gel nanocomposite to a rechargeable battery is examined by fabricating a prototype cell consisting of Mg [or Mg-multiwalled carbon nanotube (MWCNT) composite] and MoO3 as negative and positive electrodes, respectively. The discharge capacity and the rechargeability of the cell have been improved when Mg metal is substituted by Mg-MWCNT composite. The discharge capacity of the optimized cell has found to be ∼175 mAh g−1 of MoO3 for an initial ten charge–discharge cycles.

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Rechargeable magnesium battery: Current status and key challenges for the future

TL;DR: In this paper, the authors present a comprehensive review of the development of nonaqueous nucleophilic/non-nucleophilic liquid electrolytes, ionic liquid based polymer as well as solid/gel polymer electrolytes; intercalation/insertion/conversion type cathodes; metallic magnesium and their alloys/intermetallic/composites as anodes; and electronically conductive but chemically and electrochemically inert current collectors for magnesium battery.
Journal ArticleDOI

Magnesium batteries: Current state of the art, issues and future perspectives

TL;DR: The current challenges call for further dedicated research efforts encompassing fundamental understanding of the core components and how they interact with each other to offering new innovative solutions.
Journal ArticleDOI

Cathode materials for magnesium and magnesium-ion based batteries

TL;DR: A review of the different chemistries and structures of the materials developed for magnesium ion cathodes can be found in this paper, where particular strategies which may lead to future research initiatives are amplified.
Journal ArticleDOI

An artificial interphase enables reversible magnesium chemistry in carbonate electrolytes.

TL;DR: By engineering an artificial Mg2+-conductive artificial interphase on the Mg anode surface, which successfully decouples the anodic and cathodic requirements for electrolytes and demonstrate highly reversible Mg chemistry in oxidation-resistant electrolytes, a new avenue is provided not only for Mg but also for other multivalent-cation batteries facing the same problems.
References
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Journal ArticleDOI

Issues and challenges facing rechargeable lithium batteries

TL;DR: A brief historical review of the development of lithium-based rechargeable batteries is presented, ongoing research strategies are highlighted, and the challenges that remain regarding the synthesis, characterization, electrochemical performance and safety of these systems are discussed.
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Prototype systems for rechargeable magnesium batteries

TL;DR: Rechargeable Mg battery systems that show promise for applications comprise electrolyte solutions based on Mg organohaloaluminate salts, and MgxMo 3S4 cathodes, into which Mg ions can be intercalated reversibly, and with relatively fast kinetics.
Journal ArticleDOI

Electrochemical measurement of transference numbers in polymer electrolytes

TL;DR: In this article, the transference number of lithium and trifluoromethanesulphonate ions in poly(ethylene oxide) at 90°C was measured and a mean value of 0.46 ± 0.02 was reported for lithium.
Journal ArticleDOI

Review of gel-type polymer electrolytes for lithium-ion batteries

TL;DR: In this paper, the advantages and characteristics of employing polymer electrolytes in solid-state lithium-ion batteries are discussed, and some critical concepts and points associated with this emerging technology that still require attention are discussed.
Journal ArticleDOI

Review on gel polymer electrolytes for lithium batteries

TL;DR: In this paper, the state-of-the-art of polymer electrolytes in view of their electrochemical and physical properties for the applications in lithium batteries is reviewed, and the ionic conductivity, morphology, porosity and cycling behavior of PVdF-HFP membranes prepared by phase inversion technique with different non-solvents have been presented.
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