Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
5149947 | Journal of Power Sources | 2016 | 10 Pages |
Abstract
The effect of Zn2+ substitution on the electrochemical performance and the structural evolution upon cycling of Na3Ni2SbO6 and Na3Zn0.5Ni1.5SbO6 is reported. Samples were synthesized by solid state route and characterised by ex-situ X-ray diffraction and ex-situ 23Na solid state NMR, the results show that the partial substitution of Ni2+ by Zn2+ alters the superstructure symmetry and leads to a disordered lattice. This structural reorganisation has direct consequences on the electrochemical performances of Na3Zn0.5Ni1.5SbO6 with an average voltage of â¼3.3Â V and with a specific capacity increase up to 145Â mAh.gâ1 at C/10. We observe that Zn2+ cations are inhomogeneously distributed in the structure, leading to different Na+ environments which are characterized by NMR. The phase transitions observed at high voltage in Na3Ni2SbO6 are suppressed in Na3Ni1.5Zn0.5SbO6 resulting in a smooth electrochemical profile with a low polarization. The presence of an irreversible phase at the end of the discharge was also detected in the undoped material.
Related Topics
Physical Sciences and Engineering
Chemistry
Electrochemistry
Authors
Frederic Aguesse, Juan-Miguel Lopez del Amo, Laida Otaegui, Eider Goikolea, Teofilo Rojo, Gurpreet Singh,