Nanocrystalline samples of Mg-Fe-H were synthesized by mixing of MgH2 and Fe in a 2:1 molar ratio by hand grinding (MIX) or by reactive ball milling (RBM) in a high-pressure vial. Hydrogenation procedures were performed at various temperatures in order to promote the full conversion to Mg2FeH6. Pure Mg2FeH6 was obtained only for the RBM material cycled at 485°C. This extremely pure Mg2FeH6 sample was investigated as an anode for lithium batteries. The reversible electrochemical lithium incorporation and de-incorporation reactions were analyzed in view of thermodynamic evaluations, potentiodynamic cycling with galvanostatic acceleration (PCGA), and ex situ X-ray Diffraction (XRD) tests. The Mg2FeH6 phase underwent a conversion reaction; the Mg metal produced in this reaction was alloyed upon further reduction. The back conversion reaction in a lithium cell was here demonstrated for the first time in a stoichiometric extremely pure Mg2FeH6 phase: the reversibility of the overall conversion process was only partial with an overall coulombic yield of 17% under quasi-thermodynamic control. Ex situ XRD analysis highlighted that the material after a full discharge/charge in a lithium cell was strongly amorphized. Under galvanostatic cycling at C/20, C/5 and 1 C, the Mg2FeH6 electrodes were able to supply a reversible capacity with increasing coulombic efficiency and decreasing specific capacity as the current rate increased. © 2018 by the authors.

Extremely pure Mg2FeH6 as a negative electrode for lithium batteries / Brutti, Sergio; Farina, Luca; Trequattrini, Francesco; Palumbo, Oriele; Reale, Priscilla; Silvestri, Laura; Panero, Stefania; Paolone, Annalisa. - In: ENERGIES. - ISSN 1996-1073. - 11:8(2018). [10.3390/en11081952]

Extremely pure Mg2FeH6 as a negative electrode for lithium batteries

Brutti, Sergio
;
Farina, Luca
;
Trequattrini, Francesco
;
Palumbo, Oriele
;
Reale, Priscilla
;
Panero, Stefania
;
Paolone, Annalisa
2018

Abstract

Nanocrystalline samples of Mg-Fe-H were synthesized by mixing of MgH2 and Fe in a 2:1 molar ratio by hand grinding (MIX) or by reactive ball milling (RBM) in a high-pressure vial. Hydrogenation procedures were performed at various temperatures in order to promote the full conversion to Mg2FeH6. Pure Mg2FeH6 was obtained only for the RBM material cycled at 485°C. This extremely pure Mg2FeH6 sample was investigated as an anode for lithium batteries. The reversible electrochemical lithium incorporation and de-incorporation reactions were analyzed in view of thermodynamic evaluations, potentiodynamic cycling with galvanostatic acceleration (PCGA), and ex situ X-ray Diffraction (XRD) tests. The Mg2FeH6 phase underwent a conversion reaction; the Mg metal produced in this reaction was alloyed upon further reduction. The back conversion reaction in a lithium cell was here demonstrated for the first time in a stoichiometric extremely pure Mg2FeH6 phase: the reversibility of the overall conversion process was only partial with an overall coulombic yield of 17% under quasi-thermodynamic control. Ex situ XRD analysis highlighted that the material after a full discharge/charge in a lithium cell was strongly amorphized. Under galvanostatic cycling at C/20, C/5 and 1 C, the Mg2FeH6 electrodes were able to supply a reversible capacity with increasing coulombic efficiency and decreasing specific capacity as the current rate increased. © 2018 by the authors.
2018
Mg2FeH6; reactive ball milling; high temperature hydrogenation; pressure-composition isotherms; discharge capacity
01 Pubblicazione su rivista::01a Articolo in rivista
Extremely pure Mg2FeH6 as a negative electrode for lithium batteries / Brutti, Sergio; Farina, Luca; Trequattrini, Francesco; Palumbo, Oriele; Reale, Priscilla; Silvestri, Laura; Panero, Stefania; Paolone, Annalisa. - In: ENERGIES. - ISSN 1996-1073. - 11:8(2018). [10.3390/en11081952]
File allegati a questo prodotto
File Dimensione Formato  
Brutti_Extremely_2018.pdf

accesso aperto

Note: https://www.mdpi.com/1996-1073/11/8/1952
Tipologia: Versione editoriale (versione pubblicata con il layout dell'editore)
Licenza: Creative commons
Dimensione 2.77 MB
Formato Adobe PDF
2.77 MB Adobe PDF

I documenti in IRIS sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.

Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11573/1270783
Citazioni
  • ???jsp.display-item.citation.pmc??? ND
  • Scopus 11
  • ???jsp.display-item.citation.isi??? 11
social impact