High Rate Capability and Cycling Stability in Multi‐Domain Nanocomposite LiNi <sub>1–</sub> <i> <sub>x</sub> </i> Ti <sub>3</sub> <i> <sub>x</sub> </i> <sub>/4</sub> O <sub>2</sub> Positive Electrodes

J Jungwoo Lim (Department of Chemistry) M Manel Sonni (Department of Chemistry University of Liverpool Crown Street Liverpool L69 7ZD UK) L Luke M. Daniels (Department of Chemistry University of Liverpool Crown Street Liverpool L69 7ZD UK) M Mounib Bahri (Albert Crewe Centre for Electron Microscopy) M Marco Zanella (Department of Chemistry University of Liverpool Crown Street Liverpool L69 7ZD UK) R Ruiyong Chen (Department of Chemistry University of Liverpool Crown Street Liverpool L69 7ZD UK) Z Zhao Li A Alex R. Neale (Department of Chemistry) H Hongjun Niu (Department of Chemistry University of Liverpool Crown Street Liverpool L69 7ZD UK) N Nigel D. Browning (Albert Crewe Centre for Electron Microscopy) M Matthew S. Dyer J John B. Claridge (Department of Chemistry University of Liverpool Crown Street Liverpool L69 7ZD UK) L Laurence J. Hardwick (Department of Chemistry) M Matthew J. Rosseinsky (Department of Chemistry, University of Liverpool, Crown Street, L69 7ZD Liverpool, U.K.)

Abstract

Abstract LiNiO 2 positive electrode materials for lithium‐ion batteries have experienced a revival of interest due to increasing technological energy demands. Herein a specific Ti 4+ substitution is targeted into LiNiO 2 to access new compositions by synthesizing the LiNi 1– x Ti 3 x /4 O 2 solid solution with the aim of retaining Ni 3+ . Compositions in the range 0.025 ≤ x ≤ 0.2 form nanocomposites of compositionally homogeneous ordered R m and disordered Fm m rock salt domains as observed via X‐ray and neutron diffraction, and STEM. The disordered rock salt domains stabilize the ordered structure to provide excellent structural reversibility via the formation of coherent interfaces during cycling and enable deep delithiation using a constant voltage charging step without structural degradation. The detrimental structural phase transitions associated with the poor cyclability of LiNiO 2 are suppressed to yield a low strain positive electrode material with high capacity retention that offers high‐rate capability even under increased cell electrode mass loadings. The composition x = 0.075 (LiNi 0.925 Ti 0.05625 O 2 ) affords a 93% capacity retention after 100 cycles (100 mA g −1 ) and demonstrates high reversible capacities of 125 mAh g −1 even under rates of 3200 mA g −1 . LiNi 0.925 Ti 0.05625 O 2 exhibits exceptional performance at electrode mass loadings (13.6 mg cm −2 ) comparable to those required for commercial cell applications.

Article Details

Volume / Issue Vol. 37, Issue 39
Published October 01, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (14)

J

Jungwoo Lim

Department of Chemistry

M

Manel Sonni

Department of Chemistry University of Liverpool Crown Street Liverpool L69 7ZD UK

L

Luke M. Daniels

Department of Chemistry University of Liverpool Crown Street Liverpool L69 7ZD UK

M

Mounib Bahri

Albert Crewe Centre for Electron Microscopy

M

Marco Zanella

Department of Chemistry University of Liverpool Crown Street Liverpool L69 7ZD UK

R

Ruiyong Chen

Department of Chemistry University of Liverpool Crown Street Liverpool L69 7ZD UK

Z

Zhao Li

A

Alex R. Neale

Department of Chemistry

H

Hongjun Niu

Department of Chemistry University of Liverpool Crown Street Liverpool L69 7ZD UK

N

Nigel D. Browning

Albert Crewe Centre for Electron Microscopy

M

Matthew S. Dyer

J

John B. Claridge

Department of Chemistry University of Liverpool Crown Street Liverpool L69 7ZD UK

L

Laurence J. Hardwick

Department of Chemistry

M

Matthew J. Rosseinsky

Department of Chemistry, University of Liverpool, Crown Street, L69 7ZD Liverpool, U.K.