Impact of the metal centre (Al3+, Fe3+) on the post-synthetic lithiation of functionalized MIL-53s and the electrochemical properties of lithiated derivatives
Literature Information
Morgane Denis, Hubert Chevreau, Pablo Salcedo-Abraira, Philippe Moreau, Nicolas Dupré, Michael Paris, Philippe Poizot, Thomas Devic
Metal–organic frameworks (MOFs) combining both organic and inorganic redox-active moieties have recently drawn interest in the field of electrochemical energy storage. Here we focused our attention on MIL-53(M) (M = Al, Fe) analogues based on 2,5-dioxo-1,4-benzenedicarboxylate, as this ligand was already found to present an interesting electrochemical activity based on the quinone/phenolate redox couple in the solid state. We described here our attempts to chemically lithiate the title solids. Various synthetic paths were explored, and the resulting solids were characterized by a broad set of techniques, including X-ray diffraction, MAS NMR spectroscopy, transmission electron microscopy, inductively coupled plasma-atomic emission spectroscopy and total X-ray scattering experiments, among others. We showed that although the lithiation was accompanied by a loss of the long-range order whatever the synthetic conditions and the trivalent cation, the reactivity strongly differed for M = Al and Fe. Eventually, the electrochemical extraction/uptake of Li+ in the lithiated derivatives was evaluated in Li-half cells. Although their storage capacities are moderate, we found that the presence of even a minor amount of M3+ cations not only impacts the working potential of the ligand but also improves their long term capacity retention.
Related Literature
Charge-patching method for the calculation of electronic structure of polypeptides
Fu Ding, Lin-Wang Wang
DOI: 10.1039/C8CP01803K
Spectroscopic and magnetic investigations of a spin-frustrated Mn-doped CoAl2O4 spinel
Suman Kalyan Pradhan, Biswajit Dalal, Ankita Sarkar, Subodh Kumar De
DOI: 10.1039/C8CP07140C
Pressure-induced phase transition, metallization and superconductivity in ZrS2
Hang Zhai, Zhen Qin, Dan Sun, Jianyun Wang, Chang Liu, Nan Min, Quan Li
DOI: 10.1039/C8CP04271C
π-Hydrogen bonding and aromaticity: a systematic interplay study
A-Reza Nekoei, Morteza Vatanparast
DOI: 10.1039/C8CP07003B
Statistical thermodynamics for the unexpectedly large difference between disaccharide stereoisomers in terms of solubility in water
Tomohiko Hayashi, Masahiro Kinoshita
DOI: 10.1039/C8CP04377A
Studying NAD(P)H cofactor-binding to alcohol dehydrogenases through global analysis of circular dichroism spectra
Marija Marolt, Steffen Lüdeke
DOI: 10.1039/C8CP04869J
Anomalous molecular infiltration in graphene laminates
Riccardo Checchetto, Paolo Bettotti, Gianfranco Carotenuto, Werner Egger, Christoph Hugenschmidt, Antonio Miotello
DOI: 10.1039/C8CP03879A
Pressure-induced conduction band convergence in the thermoelectric ternary chalcogenide CuBiS2
Najebah M. Alsaleh, Elvis Shoko, Udo Schwingenschlögl
DOI: 10.1039/C8CP05818K
Time-gated triplet-state optical spectroscopy to decipher organic luminophores embedded in rigid matrices
Atul D. Sontakke, Jean-Marie Mouesca, Victor Castaing, Mathieu Salaün, Isabelle Gautier-Luneau, Vincent Maurel, Alain Ibanez, Bruno Viana
DOI: 10.1039/C8CP03952F
Effects of the interplay between electron–electron interaction and intrinsic spin–orbit interaction on the indirect RKKY coupling in graphene nanoflakes
Akram Mirehi, Ebrahim Heidari-Semiromi
DOI: 10.1039/C8CP05041D
You might also like
Are there alternatives to 1-(4-Chlorophenyl)-N-hydroxymethanimine (CAS: 3848-36-0) in synthesis?
When considering alternatives to 1-(4-Chlorophenyl)-N-hydroxymethanimine (CAS: 3...
How should (1R,9S,10S,12S,14E,16S,19R,20R,21S,22R)-3,9,21-Trihydroxy-5,10,12,14,16,20,22-heptamethyl-23,24-dioxatetracyclo[17.3.1.1~6,9~.0~2,7~]tetracosa-2,5,7,14-tetraen-4-one (CAS: 183202-73-5) be stored?
This compound should be stored in a cool, dry place away from direct sunlight. I...
How is 3-(4-Bromophenyl)-5-(2-fluorophenyl)-1,2,4-oxadiazole (CAS: 419553-16-5) typically synthesized?
3-(4-Bromophenyl)-5-(2-fluorophenyl)-1,2,4-oxadiazole is synthesized through a m...
How is 5-Chloro-2-(4-chlorophenyl)-4-methyl-6-[3-(1-piperidinyl)propoxy]pyrimidine (CAS: 1639220-19-1) typically synthesized?
5-Chloro-2-(4-chlorophenyl)-4-methyl-6-[3-(1-piperidinyl)propoxy]pyrimidine (CAS...
What industries use 2-Chloro-4-(difluoromethoxy)pyridine (CAS: 1206978-15-5)?
2-Chloro-4-(difluoromethoxy)pyridine is used in the pharmaceutical industry for ...
What regulatory guidelines apply to 3-Chloro-6-methylpyridazine (CAS: 1121-79-5)?
3-Chloro-6-methylpyridazine (CAS: 1121-79-5) is classified under the Globally Ha...
Are there alternatives to Methyl 4,5-dimethyl-2-nitrobenzoate in synthesis?
Several alternatives can be used in the synthesis of Methyl 4,5-dimethyl-2-nitro...
Are there alternatives to (2E,2'E)-3,3'-(1,4-Phenylene)bisacrylaldehyde in synthesis?
Alternatives to (2E,2'E)-3,3'-(1,4-Phenylene)bisacrylaldehyde include other acry...
What is 3-Amino-5-chloropyridin-2-ol hydrochloride (CAS: 1261906-29-9)?
3-Amino-5-chloropyridin-2-ol hydrochloride is an organic compound with the CAS n...
What precautions should be taken when handling 6,7-Difluoro-2,3-dihydro-4H-chromen-4-one (CAS: 1092349-93-3)?
When handling 6,7-Difluoro-2,3-dihydro-4H-chromen-4-one, it is essential to wear...














![[4-(Isobutyrylamino)phenyl]boronic acid structure [4-(Isobutyrylamino)phenyl]boronic acid structure](https://static.chemtradehub.com/structs/874/874219-50-8-6ab5.webp)
