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Le laboratoire de Physico-Chimie des Matériaux et des Electrolytes pour l’Energie (PCM2E) a été créé en 2012 et travaille dans le domaine de la conversion et du stockage de l'énergie (batteries, supercondensateurs, photovoltaïque hybride, liquides ioniques), sur les matériaux nanostructurés et dispositifs électrochromes organiques.
Le projet global du laboratoire est construit autour de compétences en électrochimie, thermodynamique et chimie des matériaux. Le laboratoire compte trois thématiques prioritaires qui sont :
- Axe 1 : Electrolytes, membranes et matériaux d’électrode pour le stockage de l’énergie
- Axe 2 : Semiconducteurs organiques et matériaux nanostructurés
- Axe 3 : Liquides Ioniques
Texte intégral48
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Références bibliographiques213
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Open Access33 %
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Mots clés
Deep eutectic solvent
Carbazole
Density functional theory
Morphology
Electrochemical capacitors
Water
Electrolyte additives
Energy storage systems
Heat capacity
Dynamic light scattering
Capacitance
Manganese
Lithium-ion batteries
Electrolyte/electrode interface
Electrolytes
SEI additives
Supercapacitors
Lithium compounds
CO2 capture
Protic ionic liquids
Statistical physics
Rubber
High voltage
Na-ion batteries
Gamma butyrolactone
Viscosity
Supercapacitor
1-butyl-1-methylpyrrolidinium bistrifluoromethylsulfonylimide
Ionic liquids
Electrochemical performances
Cathode
3-benzodioxoles
Cryoetching
Electrochemical storage
Conducting polymers
Lithium ion batteries
Manganese oxide
Batteries
Temperature
Adiponitrile
Electrochemical impedance spectroscopy
Electrochemical polymerization
Electrolyte
2D ionic transport
Ionic Liquid
Heat transfer fluids
Li-ion batteries
Nanoparticles
Ionic liquid
Binary mixtures
High potential spinel
Tensiometry
Bistrifluoromethylsulfonylimide
LiS batteries
Hole transporting material
LiTFSI
Activated carbon
Volumetric properties
Protic ionic liquid
Battery
Chemical activation
Graphite
Symmetric cells
Thermophysical properties
Cathodes
3-propane sultone
N-methylacetamide
Cyclic voltammetry
Isobaric heat capacity
Negative electrode
Carbon nanotubes
Propylene carbonate
Copolymerization
Li-ion battery
SEI
MnO2
Lithium salt
Speed of sound
Acetonitrile
Transport properties
Adsorption isotherms
Electrochemistry
Ionic Liquids
Micellar parameters
Additives
Deep eutectic solvents
Catholyte
Conductimetry
Perovskite solar cells
Electrodes
Polypyrrole
Nanocomposites
Modeling
Thermal conductivity
Lithium
2-apyrimidines
Physical properties
Group contribution model
Alkylcarbonates
Les derniers dépôts
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Julie Pires, Aurore Castets, J. Santos-Peña, E. Dumont, S. Levasseur, et al.. Tris(2,2,2-trifluoroethyl) phosphite as an electrolyte additive for high-voltage lithium-ion batteries using lithium-rich layered oxide cathode. Journal of Power Sources, 2015, 296, pp.413-425. ⟨10.1016/j.jpowsour.2015.07.065⟩. ⟨hal-01560420⟩
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Victor Chaudoy, Johan Jacquemin, François Tran-Van, Michaël Deschamps, Fouad Ghamouss. Effect of mixed anions on the transport properties and performance of an ionic liquid-based electrolyte for lithium-ion batteries. Pure and Applied Chemistry, 2019, 91 (8), pp.1361-1381. ⟨10.1515/pac-2018-1006⟩. ⟨hal-02267972⟩
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Soukaina Hilali, Louise van Gheluwe, Mervé Yagmur, Laura Wils, Myriam Phelippe, et al.. NaDES-based biorefinery of Spirulina (Arthrospira platensis): A new path for sustainable high value-added metabolites. Separation and Purification Technology, 2024, 329, pp.125123. ⟨10.1016/j.seppur.2023.125123⟩. ⟨hal-04213157⟩
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Arunabh Ghosh, Fouad Ghamouss, Flavien Ivol, Marina Porcher, Johan Jacquemin. Development of a safe and high-performance electrolyte based on Phenylacetonitrile (C$_6$H$_5$CH$_2$CN) and ionic liquid blends. Le Studium Multidisciplinary Journal, 2021, 5, pp.16-39. ⟨10.34846/le-studium.196.01.fr.01-2021⟩. ⟨hal-04198372⟩