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Co-intercalation into graphite of lithium, potassium and barium using LiCl–KCl molten salt

The synthesis of a novel first stage GIC containing simultaneously lithium, potassium and barium through a solid–liquid reaction by molten salts method is described. Such a route has been largely developed in our laboratory for intercalation of metals into graphite. The interplanar distance of this...

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Published in:Carbon Letters 2023-08, Vol.33 (5), p.1303-1309
Main Authors: Hajj, Inass El, Speyer, Lucie, Cahen, Sébastien, Berger, Pascal, Medjahdi, Ghouti, Lagrange, Philippe, Claire Hérold
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cited_by cdi_FETCH-LOGICAL-c460t-3abe1383ee532eacfa4e219ff0f93dbeb6c109d33a9d98b0c8d9c2f904b389293
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container_end_page 1309
container_issue 5
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container_title Carbon Letters
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creator Hajj, Inass El
Speyer, Lucie
Cahen, Sébastien
Berger, Pascal
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Lagrange, Philippe
Claire Hérold
description The synthesis of a novel first stage GIC containing simultaneously lithium, potassium and barium through a solid–liquid reaction by molten salts method is described. Such a route has been largely developed in our laboratory for intercalation of metals into graphite. The interplanar distance of this quaternary compound reaches 950 pm and exhibits poly-layered intercalated sheets defined by X-ray measurements. The Li0.2K0.75Ba0.6C6 chemical formula of the compound is determined by ion beam analysis and this GIC is remarkably homogeneous. This GIC is the first poly-layered one containing barium.
doi_str_mv 10.1007/s42823-022-00352-8
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subjects Alloys
Analytical techniques
Barium
Carbon
Chemical Sciences
Graphene
Graphite
Heavy metals
Inorganic chemistry
Intercalation
Ion beams
Lithium
Lithium chloride
Metals
Molten salts
Nuclear reactors
Potassium
Potassium chloride
Scanning electron microscopy
Spectrum analysis
title Co-intercalation into graphite of lithium, potassium and barium using LiCl–KCl molten salt
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