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Characterization of Electrochemical Processes in Metal-Organic Batteries by X-ray Raman Spectroscopy.
Rajh, Ava; Arcon, Iztok; Bucar, Klemen; Zitnik, Matjaz; Petric, Marko; Vizintin, Alen; Bitenc, Jan; Kosir, Urban; Dominko, Robert; Gretarsson, Hlynur; Sundermann, Martin; Kavcic, Matjaz.
Afiliación
  • Rajh A; Jozef Stefan Institute, Jamova 39, 1000 Ljubljana, Slovenia.
  • Arcon I; University of Ljubljana, Faculty of Mathematics and Physics, Jadranska ulica 19, 1000 Ljubljana, Slovenia.
  • Bucar K; Jozef Stefan Institute, Jamova 39, 1000 Ljubljana, Slovenia.
  • Zitnik M; University of Nova Gorica, Vipavska 13, SI-5000 Nova Gorica, Slovenia.
  • Petric M; Jozef Stefan Institute, Jamova 39, 1000 Ljubljana, Slovenia.
  • Vizintin A; University of Ljubljana, Faculty of Mathematics and Physics, Jadranska ulica 19, 1000 Ljubljana, Slovenia.
  • Bitenc J; Jozef Stefan Institute, Jamova 39, 1000 Ljubljana, Slovenia.
  • Kosir U; University of Ljubljana, Faculty of Mathematics and Physics, Jadranska ulica 19, 1000 Ljubljana, Slovenia.
  • Dominko R; Jozef Stefan Institute, Jamova 39, 1000 Ljubljana, Slovenia.
  • Gretarsson H; University of Zagreb, Faculty of Geotechnical Engineering, Hallerova aleja 7, 42000 Varazdin, Croatia.
  • Sundermann M; National Institute of Chemistry, Hajdrihova 19, 1000 Ljubljana, Slovenia.
  • Kavcic M; National Institute of Chemistry, Hajdrihova 19, 1000 Ljubljana, Slovenia.
J Phys Chem C Nanomater Interfaces ; 126(12): 5435-5442, 2022 Mar 31.
Article en En | MEDLINE | ID: mdl-35392436
X-ray Raman spectroscopy (XRS) is an emerging spectroscopic technique that utilizes inelastic scattering of hard X-rays to study X-ray absorption edges of low Z elements in bulk material. It was used to identify and quantify the amount of carbonyl bonds in a cathode sample, in order to track the redox reaction inside metal-organic batteries during the charge/discharge cycle. XRS was used to record the oxygen K-edge absorption spectra of organic polymer cathodes from different multivalent metal-organic batteries. The amount of carbonyl bond in each sample was determined by modeling the oxygen K-edge XRS spectra with the linear combination of two reference compounds that mimicked the fully charged and the fully discharged phases of the battery. To interpret experimental XRS spectra, theoretical calculations of oxygen K-edge absorption spectra based on density functional theory were performed. Overall, a good agreement between the amount of carbonyl bond present during different stages of battery cycle, calculated from linear combination of standards, and the amount obtained from electrochemical characterization based on measured capacity was achieved. The electrochemical mechanism in all studied batteries was confirmed to be a reduction of double carbonyl bond and the intermediate anion was identified with the help of theoretical calculations. X-ray Raman spectroscopy of the oxygen K-edge was shown to be a viable characterization technique for accurate tracking of the redox reaction inside metal-organic batteries.

Texto completo: 1 Bases de datos: MEDLINE Idioma: En Revista: J Phys Chem C Nanomater Interfaces Año: 2022 Tipo del documento: Article País de afiliación: Eslovenia

Texto completo: 1 Bases de datos: MEDLINE Idioma: En Revista: J Phys Chem C Nanomater Interfaces Año: 2022 Tipo del documento: Article País de afiliación: Eslovenia