Unconventional Magnetism and Band Gap Formation in LiFePO4: Consequence of Polyanion Induced Non-planarity

被引:29
作者
Jena, Ajit [1 ]
Nanda, B. R. K. [1 ]
机构
[1] Indian Inst Technol, Dept Phys, Condensed Matter Theory & Computat Lab, Madras 600036, Tamil Nadu, India
关键词
ELECTRONIC-STRUCTURE; PHOSPHO-OLIVINES; LIMPO4; M; LITHIUM; DIFFUSION; BATTERY; FORM; MNO; FE;
D O I
10.1038/srep19573
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Oxygen plays a critical role in strongly correlated transition metal oxides as crystal field effect is one of the key factors that determine the degree of localization of the valence d/f states. Based on the localization, a set of conventional mechanisms such as Mott-Hubbard, Charge-transfer and Slater were formulated to explain the antiferromagnetic and insulating (AFI) phenomena in many of these correlated systems. From the case study on LiFePO4, through density-functional calculations, we demonstrate that none of these mechanisms are strictly applicable to explain the AFI behavior when the transition metal oxides have polyanions such as (PO4)(3-). The symmetry-lowering of the metal-oxygen complex, to stabilize the polyanion, creates an asymmetric crystal field for d/f states. In LiFePO4 this field creates completely non-degenerate Fe-d states which, with negligible p-d and d-d covalent interactions, become atomically localized to ensure a gap at the Fermi level. Due to large exchange splitting, high spin state is favored and an antiferromagnetic configuration is stabilized. For the prototype LiFePO4, independent electron approximation is good enough to obtain the AFI ground state. Inclusion of additional correlation measures like Hubbard U simply amplifies the gap and therefore LiFePO4 can be preferably called as weakly coupled Mott insulator.
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页数:11
相关论文
共 57 条
[1]   BAND THEORY AND MOTT INSULATORS - HUBBARD-U INSTEAD OF STONER-I [J].
ANISIMOV, VI ;
ZAANEN, J ;
ANDERSEN, OK .
PHYSICAL REVIEW B, 1991, 44 (03) :943-954
[2]   A comparative study of magnetic properties of LiFePO4 and LiMnPO4 [J].
Arcon, D ;
Zorko, A ;
Dominko, R ;
Jaglicic, Z .
JOURNAL OF PHYSICS-CONDENSED MATTER, 2004, 16 (30) :5531-5548
[3]   Ab initio Studies on the Interplay between Spin-Orbit Interaction and Coulomb Correlation in Sr2IrO4 and Ba2IrO4 [J].
Arita, R. ;
Kunes, J. ;
Kozhevnikov, A. V. ;
Eguiluz, A. G. ;
Imada, M. .
PHYSICAL REVIEW LETTERS, 2012, 108 (08)
[4]   Probing magnetic order in LiMPO4 (M = Ni, Co, Fe) and lithium diffusion in LixFePO4 [J].
Baker, P. J. ;
Franke, I. ;
Pratt, F. L. ;
Lancaster, T. ;
Prabhakaran, D. ;
Hayes, W. ;
Blundell, S. J. .
PHYSICAL REVIEW B, 2011, 84 (17)
[5]  
Ballhausen C.J., 1962, Introduction to Ligand Field Theory
[6]   POSSIBLE HIGH-TC SUPERCONDUCTIVITY IN THE BA-LA-CU-O SYSTEM [J].
BEDNORZ, JG ;
MULLER, KA .
ZEITSCHRIFT FUR PHYSIK B-CONDENSED MATTER, 1986, 64 (02) :189-193
[7]   The perovskite structure - a review of its role in ceramic science and technology [J].
Bhalla, AS ;
Guo, RY ;
Roy, R .
MATERIALS RESEARCH INNOVATIONS, 2000, 4 (01) :3-26
[8]   Electronically conductive phospho-olivines as lithium storage electrodes [J].
Chung, SY ;
Bloking, JT ;
Chiang, YM .
NATURE MATERIALS, 2002, 1 (02) :123-128
[9]   Electron localization in olivine materials for advanced lithium-ion batteries [J].
Craco, L. ;
Leoni, S. .
JOURNAL OF APPLIED PHYSICS, 2012, 111 (11)
[10]  
Craco L., 2011, APPL PHYS LETT, V99, P1