Beyond the Oxygen Redox Strategy in Designing Cathode Material for Batteries: Dynamics of a Prussian Blue-like Cathode Revealed by Operando X-ray Diffraction and X-ray Absorption Fine Structure and by a Theoretical Approach - Archive ouverte HAL Accéder directement au contenu
Article Dans Une Revue Journal of Physical Chemistry C Année : 2019

Beyond the Oxygen Redox Strategy in Designing Cathode Material for Batteries: Dynamics of a Prussian Blue-like Cathode Revealed by Operando X-ray Diffraction and X-ray Absorption Fine Structure and by a Theoretical Approach

Résumé

The dynamics of the lithiation/delithiation process and the nitrosyl electroactivity in copper nitroprusside were studied by operando X-ray diffraction and operando X-ray absorption fine structure (XAFS). Data were interpreted based on a joint study performed by means of density functional theory calculations. This approach allows the relevant structural and electronic information to be retrieved from the measured scattering and absorption data and therefore the lithiation mechanism in copper nitroprusside to be untangled, which occurs with the reduction of both metals generating a lattice basal plane contraction and an axial elongation. An increase in the Debye–Waller factors for Cu–N bonds and a decreasing trend for the Cu–NC–Fe linear chains along with lithium insertion reveal a general increase in the Cu local disorder, which is thought to be the main cause of the rapid capacity fading observed during cycling. The ligand electroactivity of the nitrogen atom, detected by following vibrational frequencies, delivers an extra capacity and represents an alternative path to cationic and oxygen redox.

Domaines

Matériaux

Dates et versions

hal-02097338 , version 1 (11-04-2019)

Identifiants

Citer

Angelo Mullaliu, Giuliana Aquilanti, Lorenzo Stievano, Paolo Conti, Jasper Plaisier, et al.. Beyond the Oxygen Redox Strategy in Designing Cathode Material for Batteries: Dynamics of a Prussian Blue-like Cathode Revealed by Operando X-ray Diffraction and X-ray Absorption Fine Structure and by a Theoretical Approach. Journal of Physical Chemistry C, 2019, 123 (14), pp.8588-8598. ⟨10.1021/acs.jpcc.8b12116⟩. ⟨hal-02097338⟩
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