Research progress in solid-state synthesized LiMnPO4 cathode material for Li-ion battery applications

被引:6
|
作者
Nwachukwu, Iheke Michael [1 ,2 ]
Nwanya, Assumpta Chinwe [2 ,3 ]
Ekwealor, A. B. C. [2 ]
Ezema, Fabian I. [2 ,3 ,4 ,5 ]
机构
[1] Natl Open Univ Nigeria, Dept Phys, Abuja, Nigeria
[2] Univ Nigeria, Dept Phys & Astron, Nsukka, Nigeria
[3] Univ Nigeria, African Ctr Excellence, ACE SPED, Nsukka, Nigeria
[4] Univ South Africa, Coll Grad Studies, UNESCO UNISA Africa Chair Nanosci Nanotechnol, Muckleneuk Ridge, South Africa
[5] Natl Res Fdn, iThemba LABS, Nanosci African Network NANOAFNET, 1 Old Faure Rd,POB 722, ZA-7129 Somerset West, South Africa
来源
APPLIED SURFACE SCIENCE ADVANCES | 2023年 / 18卷
关键词
Lithium-ion battery; Solid-state synthesis; Cathode materials; Rate performance; LiMnPO4; HIGH-PERFORMANCE; ELECTROCHEMICAL PERFORMANCE; COMBUSTION SYNTHESIS; SPRAY-PYROLYSIS; ASSISTED SYNTHESIS; PHASE-DIAGRAM; DOPED LIMNPO4; MN-SITE; LITHIUM; CO;
D O I
10.1016/j.apsadv.2023.100505
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
LiMnPO4 cathode material and its derivatives are promising for energy-storage devices owing to its environmental friendliness, high energy density, and structural stability. Olivine LiMnPO4 is attractive due to its high operating voltage (4 to 5 V vs. Li+/Li), and strong P-O covalent bond, which offers many safety advantages. Despite these advantages, the commercialization of LiMnPO4-based lithium-ion batteries (LIB) has been plagued by other factors such as poor electronic and ionic conductivity, a high surface energy barrier for Li-ion diffusion, and structural degradation induced by the Jahn-Teller effect. Various strategies, including transition metal doping at the A-site and the fabrication of heterostructures with high electron mobility, have been employed to address these challenges. Notably, the exceptional electrode performance of microrods may be ascribed to their distinct three-dimensional porous hierarchical structure, which promotes rapid Li+ transport kinetics and improves structural stability in reversible electrochemical reactions. While these enhancement techniques are centered on processing, solid-state chemistry is more effective, offering convenience in overcoming obstacles related to physiochemical and electrochemical performance. The solid-state synthesis approach, typically known for its capability to tailor the size and morphology of materials, has demonstrated a significant impact on enhancing the electrochemical activity of LiMnPO4. This review critically discusses the structure dependence of LiMnPO4 cathode material on electrochemical reactions. It gives a broad overview of the research approaches being employed to enhance the structure and electrochemical performance of LiMnPO4 through the solid-state technique. It also provides a comprehensive overview of the challenges and the need for further research to fully realize the potential of LiMnPO4 cathodes as a promising cathode material for Li-Ion batteries.
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页数:17
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