Capacity Degradation Mechanism and Cycling Stability Enhancement of AlF<sub>3</sub>-Coated Nanorod Gradient Na[Ni<sub>0.65</sub>Co<sub>0.08</sub>Mn<sub>0.27</sub>]O<sub>2</sub> Cathode for Sodium-Ion Batteries.

Sun, Ho-Hyun; Hwang, Jang-Yeon; Yoon, Chong Seung; Heller, Adam; Mullins, C Buddie · ACS Nano · 2018

basic_science · Level V

Where this comes from

Abstract

O3-type Na[Ni <sub>x</sub>Co <sub>y</sub>Mn <sub>z</sub>]O<sub>2</sub> materials are attractive cathodes for sodium-ion batteries because of their full cell fabrication practicality, high energy density, and relatively easy technology transfer arising from their similarity to Li[Ni <sub>x</sub>Co <sub>y</sub>Mn <sub>z</sub>]O<sub>2</sub> materials, yet their performance viability with Ni-rich composition ( x ≥ 0.6) is still doubtful. More importantly, their capacity degradation mechanism remains to be established. In this paper, we introduce an O3-type Ni-rich AlF<sub>3</sub>-coated nanorod gradient Na[Ni<sub>0.65</sub>Co<sub>0.08</sub>Mn<sub>0.27</sub>]O<sub>2</sub> cathode with enhanced electrochemical performance in both half-cells and full cells. AlF<sub>3</sub>-coated nanorod gradient Na[Ni<sub>0.65</sub>Co<sub>0.08</sub>Mn<sub>0.27</sub>]O<sub>2</sub> particles were synthesized through a combination of dry ball-mill coating and columnar composition gradient design and deliver a discharge capacity of 168 mAh g<sup>-1</sup> with 90% capacity retention in half cells (50 cycles) and 132 mAh g<sup>-1</sup> with 90% capacity retention in full cells (200 cycles) at 75 mA g<sup>-1</sup> (0.5C, 1.5-4.1 V). Through analysis of the cycled electrodes, the capacity-degradation mechanism was unraveled in O3-type Ni-rich Na[Ni <sub>x</sub>Co <sub>y</sub>Mn <sub>z</sub>]O<sub>2</sub> from a structural perspective with emphasis on high-resolution transmission electron microscopy, providing valuable information on improving O3-type Na[Ni <sub>x</sub>Co <sub>y</sub>Mn <sub>z</sub>]O<sub>2</sub> cathode performance.