Solid-State Synthesis of Low-Cost and High-Energy-Density Sodium Layered-Tunnel Oxide Cathodes: Dynamic Structural Evolution, Na+/Vacancy Disordering, and Prominent Moisture Stability

28 Pages Posted: 26 Jan 2024

See all articles by Zhuang-Chun Jian

Zhuang-Chun Jian

Wenzhou University

Yi-Feng Liu

Wenzhou University

Yan-Fang Zhu

Wenzhou University

Jia-Yang Li

University of Wollongong

Hai-Yan Hu

Wenzhou University

Jing-Qiang Wang

Wenzhou University

Ling-Yi Kong

Wenzhou University

Xin-Bei Jia

Wenzhou University

Han-Xiao Liu

Wenzhou University

Jun-Xu Guo

Wenzhou University

Meng-Ying Li

Wenzhou University

Yan-Song Xu

Huazhong Agricultural University

Jian-Feng Mao

The University of Adelaide

Shilin Zhang

The University of Adelaide

Yao Xiao

Wenzhou University

Shixue Dou

University of Wollongong - Institute for Superconducting & Electronic Materials (ISEM)

Shulei Chou

Wenzhou University

Abstract

Manganese-based layered oxides show promise as cathode materials for sodium-ion batteries (SIBs). However, challenges including sluggish Na+ kinetics, complex phase transitions, and poor air stability hinder their practical application. Herein, we proposed a dual-function strategy that not only precisely manipulates dynamic structural evolution from layered to tunnel structure, but also effectively suppresses Na+/vacancy and charge ordering by inhibiting electron delocalization. We designed a series of Ti-substituted Na2/3Mn1-xTixO2 (x=0, 1/9, 2/9, 1/3) as proof of concept materials to demonstrate the dual-function strategy. As a result, the optimized Na2/3Mn8/9Ti1/9O2 cathode material delivers a high specific capacity of 202.9 mAh g−1 at 0.1C within 1.5−4.3 V, equivalent to 536.6 Wh kg−1 of energy density, and exhibits 71.0% of capacity retention after 300 cycles at 1C. Meanwhile, a highly reversible P2/Tunnel-OP4/Tunnel phase transition process and interlocking effect between the layered and tunnel structure as well as prominent moisture stability even after soak water treatment are further confirmed by in-situ charge and discharge XRD and other advanced characterization techniques. It is worth noting that the electrode assembled with water-solution binder still displays a high capacity retention of 85.4% after 400 cycles at 1C. Our dual-function strategy provides valuable guidance for developing high-energy density and water-stable practical SIBs cathode materials.

Keywords: Sodium layered-tunnel oxide cathodes, High energy density, Dynamic structural evolution, Na+/vacancy disordering, Moisture stability

Suggested Citation

Jian, Zhuang-Chun and Liu, Yi-Feng and Zhu, Yan-Fang and Li, Jia-Yang and Hu, Hai-Yan and Wang, Jing-Qiang and Kong, Ling-Yi and Jia, Xin-Bei and Liu, Han-Xiao and Guo, Jun-Xu and Li, Meng-Ying and Xu, Yan-Song and Mao, Jian-Feng and Zhang, Shilin and Xiao, Yao and Dou, Shixue and Chou, Shulei, Solid-State Synthesis of Low-Cost and High-Energy-Density Sodium Layered-Tunnel Oxide Cathodes: Dynamic Structural Evolution, Na+/Vacancy Disordering, and Prominent Moisture Stability. Available at SSRN: https://ssrn.com/abstract=4708080 or http://dx.doi.org/10.2139/ssrn.4708080

Zhuang-Chun Jian

Wenzhou University ( email )

276 Xueyuan Middle Rd
Chashan University Town
Wenzhou, 325035
China

Yi-Feng Liu

Wenzhou University ( email )

276 Xueyuan Middle Rd
Chashan University Town
Wenzhou, 325035
China

Yan-Fang Zhu

Wenzhou University ( email )

276 Xueyuan Middle Rd
Chashan University Town
Wenzhou, 325035
China

Jia-Yang Li

University of Wollongong ( email )

Northfields Avenue
Wollongong, 2522
Australia

Hai-Yan Hu

Wenzhou University ( email )

276 Xueyuan Middle Rd
Chashan University Town
Wenzhou, 325035
China

Jing-Qiang Wang

Wenzhou University ( email )

276 Xueyuan Middle Rd
Chashan University Town
Wenzhou, 325035
China

Ling-Yi Kong

Wenzhou University ( email )

276 Xueyuan Middle Rd
Chashan University Town
Wenzhou, 325035
China

Xin-Bei Jia

Wenzhou University ( email )

276 Xueyuan Middle Rd
Chashan University Town
Wenzhou, 325035
China

Han-Xiao Liu

Wenzhou University ( email )

276 Xueyuan Middle Rd
Chashan University Town
Wenzhou, 325035
China

Jun-Xu Guo

Wenzhou University ( email )

276 Xueyuan Middle Rd
Chashan University Town
Wenzhou, 325035
China

Meng-Ying Li

Wenzhou University ( email )

276 Xueyuan Middle Rd
Chashan University Town
Wenzhou, 325035
China

Yan-Song Xu

Huazhong Agricultural University ( email )

Wuhan, Hubei
Wuhan, 430070
China

Jian-Feng Mao

The University of Adelaide ( email )

Adelaide, 5005
Australia

Shilin Zhang

The University of Adelaide ( email )

Yao Xiao (Contact Author)

Wenzhou University ( email )

276 Xueyuan Middle Rd
Chashan University Town
Wenzhou, 325035
China

Shixue Dou

University of Wollongong - Institute for Superconducting & Electronic Materials (ISEM) ( email )

Australia

Shulei Chou

Wenzhou University ( email )

276 Xueyuan Middle Rd
Chashan University Town
Wenzhou, 325035
China

Do you have a job opening that you would like to promote on SSRN?

Paper statistics

Downloads
38
Abstract Views
256
PlumX Metrics