首页> 外文期刊>Chemistry of Materials: A Publication of the American Chemistry Society >Topotactic intercalation of a metallic dense host matrix chalcogenide with large electron-phonon coupling: Crystal structures and electronic properties of LixMo2SbS2 (0 <= x < 0.7)
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Topotactic intercalation of a metallic dense host matrix chalcogenide with large electron-phonon coupling: Crystal structures and electronic properties of LixMo2SbS2 (0 <= x < 0.7)

机译:具有大的电子-声子耦合的金属致密主体基质硫族化物的定规插入:LixMo2SbS2(0 <= x <0.7)的晶体结构和电子性质

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摘要

The functionality of the three-dimensional ternary chalcogenide Mo2SbS2 as a host is demonstrated by low-temperature reactions involving lithium-metal-liquid-ammonia reducing solutions. Rietveld analysis of neutron (T = 1.5 and 270 K) and synchrotron X-ray (T = 300 K) powder diffraction data proves that topotactic insertion of lithium in quasi-one-dimensional channels produces an isostructural family of LixMo2SbS2 (0 <= x < 0.7) compounds. The optimization of the electronic properties of such a dense host matrix material via intercalation is studied by band structure calculations using the density functional theory (DFT). Mulliken population analysis indicates that a major effect of the presence of Li in the Mo2SbS2 is the filling of the d-holes close to Fermi level and therefore only the p-orbitals give rise to mobile carriers in the LixMo2SbS2. Charge disproportionation at the two Mo nonequivalent crystallographic sites and the favorable electrostatic environment of the Li (which is partially depleted of its charge) point to polaron formation, consistent with partial localization upon Li-doping. The resistivity, rho(T) (2 <= T <= 270 K), for all compositions studied is modeled by the Bloch-Gruneisen function. Phenomenologically, a percolation model describes the crossover of rho(T) to a higher conductivity regime at a critical Li composition of x(c) approximate to 0.19. As reflected in the small overall modification to its electronic conductivity, the host efficiently accommodates the perturbations due to chemical and physical (P <= 17 kbar) pressure. The data analysis finds an enhanced electron-phonon coupling constant for Mo2SbS2 (lambda(t) approximate to 2.45) on the basis of the one-electron band-theory model.
机译:三维三元硫属元素化物Mo2SbS2作为主体的功能通过涉及锂金属-液-氨还原溶液的低温反应得到证明。对中子(T = 1.5和270 K)和同步加速器X射线(T = 300 K)粉末衍射数据的Rietveld分析证明,锂在准一维通道中的定势插入会产生LixMo2SbS2的同构族(0 <= x <0.7)的化合物。通过使用密度泛函理论(DFT)的能带结构计算,研究了通过插层法对这种致密基质材料的电子性能的优化。 Mulliken种群分析表明,Mo2SbS2中Li的存在的主要作用是填充了接近费米能级的d孔,因此只有p轨道在LixMo2SbS2中产生了移动载流子。在两个Mo非等价晶体学位点处的电荷歧化和Li的有利静电环境(部分耗尽了其电荷)指向极化子的形成,这与Li掺杂时的局部定位相一致。通过Bloch-Gruneisen函数对所有研究成分的电阻率rho(T)(2 <= T <= 270 K)进行建模。现象学上,渗流模型描述了在临界Li组成x(c)接近0.19时,rho(T)与较高电导率的交叉。正如对其电子传导性的整体修改所反映的那样,主体有效地适应了由于化学和物理(P <= 17 kbar)压力引起的扰动。数据分析在单电子能带理论模型的基础上,发现了Mo2SbS2的增强的电子-声子耦合常数(λ(t)近似为2.45)。

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