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Dive into the research topics where Aurélien Boisset is active.

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Featured researches published by Aurélien Boisset.


Journal of Colloid and Interface Science | 2009

Aggregation behavior in water of new imidazolium and pyrrolidinium alkycarboxylates protic ionic liquids.

Mérièm Anouti; Jennifer Jones; Aurélien Boisset; Johan Jacquemin; Magaly Caillon-Caravanier; Daniel Lemordant

A novel class of anionic surfactants was prepared through the neutralization of pyrrolidine or imidazole by alkylcarboxylic acids. The compounds, namely the pyrrolidinium alkylcarboxylates ([Pyrr][C(n)H(2n+1)COO]) and imidazolium alkylcarboxylates ([Im][C(n)H(2n+1)COO]), were obtained as ionic liquids at room temperature. Their aggregation behavior has been examined as a function of the alkyl chain length (from n=5 to 8) by surface tensiometry and conductivity. Decreases in the critical micelle concentration (cmc) were obtained, for both studied PIL families, when increasing the anionic alkyl chain length (n). Surprisingly, a large effect of the alkyl chain length was observed on the minimum surface area per surfactant molecule (A(min)) and, hence the maximum surface excess concentration (Gamma(max)) when the counterion was the pyrrolidinium cation. This unusual comportment has been interpreted in term of a balance between van der Waals and coulombic interactions. Conductimetric measurements permit determination of the degree of ionization of the micelle (a) and the molar conductivity (Lambda(M)) of these surfactants as a function of n. The molar conductivities at infinite dilution in water (Lambda(infinity)) of the [Pyrr]+ and [Im]+ cations have been then determined by using the classical Kohlraush equation. Observed change in the physicochemical, surface, and micellar properties of these new protonic ionic liquid surfactants can be linked to the nature of the cation. By comparison with classical anionic surfactants having inorganic counterions, pyrrolidinium alkylcarboxylates and imidazolium alkylcarboxylates exhibit a higher ability to aggregate in aqueous solution, demonstrating their potential applicability as surfactant.


Physical Chemistry Chemical Physics | 2013

Deep eutectic solvents based on N-methylacetamide and a lithium salt as suitable electrolytes for lithium-ion batteries

Aurélien Boisset; Sebastian Menne; Johan Jacquemin; Andrea Balducci; Mérièm Anouti

In this work, we present a study on the physical and electrochemical properties of three new Deep Eutectic Solvents (DESs) based on N-methylacetamide (MAc) and a lithium salt (LiX, with X = bis[(trifluoromethyl)sulfonyl]imide, TFSI; hexafluorophosphate, PF6; or nitrate, NO3). Based on DSC measurements, it appears that these systems are liquid at room temperature for a lithium salt mole fraction ranging from 0.10 to 0.35. The temperature dependences of the ionic conductivity and the viscosity of these DESs are correctly described by using the Vogel-Tammann-Fulcher (VTF) type fitting equation, due to the strong interactions between Li(+), X(-) and MAc in solution. Furthermore, these electrolytes possess quite large electrochemical stability windows up to 4.7-5 V on Pt, and demonstrate also a passivating behavior toward the aluminum collector at room temperature. Based on these interesting electrochemical properties, these selected DESs can be classified as potential and promising electrolytes for lithium-ion batteries (LIBs). For this purpose, a test cell was then constructed and tested at 25 °C, 60 °C and 80 °C by using each selected DES as an electrolyte and LiFePO4 (LFP) material as a cathode. The results show a good compatibility between each DES and LFP electrode material. A capacity of up to 160 mA h g(-1) with a good efficiency (99%) is observed in the DES based on the LiNO3 salt at 60 °C despite the presence of residual water in the electrolyte. Finally preliminary tests using a LFP/DES/LTO (lithium titanate) full cell at room temperature clearly show that LiTFSI-based DES can be successfully introduced into LIBs. Considering the beneficial properties, especially, the cost of these electrolytes, such introduction could represent an important contribution for the realization of safer and environmentally friendly LIBs.


Physical Chemistry Chemical Physics | 2012

Triethylammonium bis(tetrafluoromethylsulfonyl)amide protic ionic liquid as an electrolyte for electrical double-layer capacitors

Laure Timperman; Piotr Skowron; Aurélien Boisset; Hervé Galiano; Daniel Lemordant; Elzbieta Frackowiak; François Béguin; Mérièm Anouti


Journal of Chemical & Engineering Data | 2012

Thermophysical properties of ammonium-based bis{(trifluoromethyl)sulfonyl} imide ionic liquids: Volumetric and transport properties

Karolina Machanová; Aurélien Boisset; Zuzana Sedláková; Mérièm Anouti; Magdalena Bendová; Johan Jacquemin


Journal of Physical Chemistry C | 2013

Comparative Performances of Birnessite and Cryptomelane MnO2 as Electrode Material in Neutral Aqueous Lithium Salt for Supercapacitor Application

Aurélien Boisset; Laurence Athouël; Johan Jacquemin; Patrice Porion; Thierry Brousse; Mérièm Anouti


Journal of Physical Chemistry C | 2012

Sulfonium Bis(trifluorosulfonimide) Plastic Crystal Ionic Liquid as an Electrolyte at Elevated Temperature for High-Energy Supercapacitors

Mérièm Anouti; Laure Timperman; Mostafa el hilali; Aurélien Boisset; Hervé Galiano


Electrochimica Acta | 2013

Physical properties of a new Deep Eutectic Solvent based on lithium bis[(trifluoromethyl)sulfonyl]imide and N-methylacetamide as superionic suitable electrolyte for lithium ion batteries and electric double layer capacitors

Aurélien Boisset; Johan Jacquemin; Mérièm Anouti


Journal of Physical Chemistry C | 2014

Deep Eutectic Solvents Based on N-Methylacetamide and a Lithium Salt as Electrolytes at Elevated Temperature for Activated Carbon-Based Supercapacitors

Warda Zaidi; Aurélien Boisset; Johan Jacquemin; Laure Timperman; Mérièm Anouti


Journal of Solution Chemistry | 2015

Thermal Properties of Alkyl-triethylammonium bis\{(trifluoromethyl)sulfonyl\}imide Ionic Liquids

Karolina Machanová; Zdeněk Wagner; Adéla Andresová; Jan Rotrekl; Aurélien Boisset; Johan Jacquemin; Magdalena Bendová


Honolulu PRiME 2012 | 2012

Aqueous Electrolytes for Ultracapacitor Devices Using Manganese Oxide as Electrode Material

Aurélien Boisset; Laurence Athouël; Johan Jacquemin; Thierry Brousse; Mérièm Anouti

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Johan Jacquemin

François Rabelais University

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Mérièm Anouti

François Rabelais University

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Karolina Machanová

Academy of Sciences of the Czech Republic

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Magdalena Bendová

Academy of Sciences of the Czech Republic

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Laure Timperman

François Rabelais University

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Daniel Lemordant

François Rabelais University

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Thierry Brousse

Centre national de la recherche scientifique

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Adéla Andresová

Academy of Sciences of the Czech Republic

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Jan Rotrekl

Academy of Sciences of the Czech Republic

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