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Role of Ni to Mn ratio in Ca-pillared O3-Type cathodes: Decoupling structural dynamics and electrochemical performance via operando characterization
DOI:
10.1016/j.jpowsour.2025.238399
Authors:
Chuxin
Yue
(University of St Andrews; The Faraday Institution)
,
A. Robert
Armstrong
(University of St Andrews; The Faraday Institution)
Co-authored by industrial partner:
No
Type:
Journal Paper
Journal:
Journal Of Power Sources
, VOL 659
State:
Published (Approved)
Published:
December 2025
Diamond Proposal Number(s):
36598
Open Access
Abstract: O3 phase NiFeMn- based layered transition metal oxides have attracted interest for positive electrode materials for Na-ion batteries. However, they generally suffer from challenges like phase transitions and Fe migration. Recently, the substitution of Ca into the Na layer, serving as a ‘pillar’, has proven to be an effective approach to overcome these challenges. Here, we systematically studied the composition-dependent Ca pillaring effect on the electrochemical performance and structure evolution of two O3 phase NiFeMn-based layered transition metal oxides. It is found that, although moderate Ca doping in high-Ni system - Na1-2xCaxNi0.25Mn0.25Fe0.5O2 (x = 0.00, 0.03) enhances cycling stability and reduces polarization, excessive doping compromises rate capability and does not effectively prevent Fe migration. Conversely, high-Mn system - Na1-2xCaxNi0.17Mn0.33Fe0.5O2 (x = 0.00, 0.04) exhibits a more robust and beneficial response to Ca incorporation, showing enhanced structural integrity, improved redox reversibility, and effective suppression of Fe migration. This study provides insights into the tunable chemical environments of transition metal oxides, thereby advancing the design of high-performance positive electrode materials and contributing to the development of next-generation sodium-ion batteries.
Diamond Keywords: Batteries; Sodium-ion
Subject Areas:
Energy,
Materials,
Chemistry
Instruments:
B18-Core EXAFS
Added On:
24/09/2025 08:41
Documents:
1-s2.0-S0378775325022359-main.pdf
Discipline Tags:
Energy Storage
Energy
Physical Chemistry
Energy Materials
Chemistry
Materials Science
Technical Tags:
Spectroscopy
X-ray Absorption Spectroscopy (XAS)
Extended X-ray Absorption Fine Structure (EXAFS)
X-ray Absorption Near Edge Structure (XANES)