Enhancing the Electrochemical Performance of Olivine LiMnPO4 as Cathode Materials for Li-Ion Batteries by Ni-Fe Codoping

被引:31
|
作者
Oukahou, Said [1 ]
Maymoun, Mohammad [1 ]
Elomrani, Abdelali [1 ]
Sbiaai, Khalid [1 ]
Hasnaoui, Abdellatif [1 ]
机构
[1] Sultan Moulay Slimane Univ Beni Mellal, Polydisciplinary Fac Khouribga, ME Lab LS2, Khouribga 25000, Morocco
关键词
density functional theory; LiMnPO4; lithium-ion batteries; codoping; barrier energy; DENSITY-FUNCTIONAL THEORY; NANOCOMPOSITE CATHODE; LIMPO4; M; MPO4; MN; CO; INTERCALATION; LIFEPO4;
D O I
10.1021/acsaem.2c01319
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
The cathode material is one of the components that play a key role in the safety, cost, and performance of Li-ion batteries. LiMnPO4 (LMP) has attracted significant attention as a potential cathode material for Li-ion rechargeable batteries due to its series of advantages. However, LMP suffers from low electronic and ionic conductivity. Therefore, this work aims to overcome these constraints of LMP by Ni-Fe codoping. In this regard, we used density functional theory simulations to investigate the effect of Ni-Fe codoping on the structural, electronic, magnetic, electrochemical potential, and kinetic properties of lithiated/ delithiated pristine phases (i.e., ), as well as on the thermodynamic stability, the theoretical capacity, the charge transfer, the average M-O bond lengths, and the electrical conductivity. We also evaluated the thermodynamic stability and charge transfer of Ni/Fe single doping in lithiated/delithiated (LiMnPO4/MnPO4) pristine phases, that is, LMNP/MNP (LiMn0.5Ni0.5PO4/Mn0.5Ni0.5PO4) and LMFP/MFP (LMn(0.5)Fe0.5PO4/Mn0.5Fe0.5PO4). We have found that Ni-Fe codoping affected the structural, electronic, kinetic properties, and electrical conductivity of pristine LMP. The volume of LMP decreased with Ni-Fe codoping. Moreover, a small change in unit cell volume between lithiated and delithiated phases was found for all structures, indicating good reversibility during Li insertion/ extraction. Ni-Fe codoping reduces the band gap of LMP from 3.62 to 1.55 eV, resulting in a good improvement in the electronic conductivity. The migration barrier energy was calculated to be 0.34 eV for Li-ions in MNFP, which is lower than that of MP (0.40 eV), indicating that Ni-Fe codoping is beneficial for enhancing the ionic conductivity of pristine LMP. This study may supply insights for the development of LMNFP cathode materials in lithium-ion rechargeable battery applications.
引用
收藏
页码:10591 / 10603
页数:13
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