Ultra-uniform interfacial matrix via high-temperature thermal shock for long-cycle stability cathodes of sodium-ion batteries

Abstract

NaNi1/3Fe1/3Mn1/3O2 (NFM333) is a promising cobalt-free, high-capacity cathode material for sodium-ion batteries, but suffers from poor cycling stability when prepared by the conventional tube furnace method due to electroactive metal migration, leading to a passive surface layer. To address this challenge, a high-temperature shock (HTS) method was employed. Compared to the tube furnace method, HTS offers a rapid heating process that contributes to a more compact and ultra-uniform NaCaPO4 (NCP) coating, leading to enhanced structural integrity and coating quality. The HTS method first enables the formation of a compact and ultra-uniform NCP coating, which prevents nickel migration more effectively compared to tube furnace-prepared NFM333 (Tu-NFM333). By preventing nickel migration, the surface residual alkalinity is reduced, enhancing air stability and improving electrochemical performance. As a result, HTS-treated NFM333 demonstrated 80% capacity retention after 1000 cycles at a 1C rate, while a pouch cell retained 70% capacity after 700 cycles. The stabilization of NFM333 through HTS highlights a promising approach for developing durable sodium-ion batteries.

Graphical abstract: Ultra-uniform interfacial matrix via high-temperature thermal shock for long-cycle stability cathodes of sodium-ion batteries

Supplementary files

Article information

Article type
Paper
Submitted
13 Jan 2025
Accepted
06 Feb 2025
First published
17 Feb 2025

Energy Environ. Sci., 2025, Advance Article

Ultra-uniform interfacial matrix via high-temperature thermal shock for long-cycle stability cathodes of sodium-ion batteries

Z. Li, P. Huang, J. Zhang, Z. Guo, Z. Liu, L. Chen, J. Zhang, J. Luo, X. Tao, Z. Miao, H. Jiang, C. Wang, X. Ye, X. Wu, W. Liu, R. Liu, Y. Chen and W. Hu, Energy Environ. Sci., 2025, Advance Article , DOI: 10.1039/D5EE00217F

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