化学
抗磁性
顺磁性
磁化率
结晶学
凝聚态物理
单斜晶系
正交晶系
费米能级
插层(化学)
中子衍射
静水压力
电子
晶体结构
无机化学
磁场
物理
热力学
量子力学
作者
Penny A. Hyde,J. Cen,Simon J. Cassidy,Nicholas H. Rees,Philip Holdship,Ronald I. Smith,Bonan Zhu,David O. Scanlon,Simon J. Clarke
出处
期刊:Inorganic Chemistry
[American Chemical Society]
日期:2023-07-19
卷期号:62 (30): 12027-12037
被引量:2
标识
DOI:10.1021/acs.inorgchem.3c01510
摘要
A new reduced phase derived from the excitonic insulator candidate Ta2NiSe5 has been synthesized via the intercalation of lithium. LiTa2NiSe5 crystallizes in the orthorhombic space group Pmnb (no. 62) with lattice parameters a = 3.50247(3) Å, b = 13.4053(4) Å, c = 15.7396(2) Å, and Z = 4, with an increase of the unit cell volume by 5.44(1)% compared with Ta2NiSe5. Significant rearrangement of the Ta-Ni-Se layers is observed, in particular a very significant relative displacement of the layers compared to the parent phase, similar to that which occurs under hydrostatic pressure. Neutron powder diffraction experiments and computational analysis confirm that Li occupies a distorted triangular prismatic site formed by Se atoms of adjacent Ta2NiSe5 layers with an average Li-Se bond length of 2.724(2) Å. Li-NMR experiments show a single Li environment at ambient temperature. Intercalation suppresses the distortion to monoclinic symmetry that occurs in Ta2NiSe5 at 328 K and that is believed to be driven by the formation of an excitonic insulating state. Magnetometry data show that the reduced phase has a smaller net diamagnetic susceptibility than Ta2NiSe5 due to the enhancement of the temperature-independent Pauli paramagnetism caused by the increased density of states at the Fermi level evident also from the calculations, consistent with the injection of electrons during intercalation and formation of a metallic phase.
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