Manson J L, Huang Q, Lynn J W, Koo H J, Whangbo M H, Bateman R, Otsuka T, Wada N, Argyriou D N, Miller J S
Department of Chemistry, University of Utah, Salt Lake City, Utah 84112-0850, USA.
J Am Chem Soc. 2001 Jan 10;123(1):162-72. doi: 10.1021/ja0024791.
Using dc magnetization, ac susceptibility, specific heat, and neutron diffraction, we have studied the magnetic properties of Mn[N(CN)2]2(pyz) (pyz = pyrazine) in detail. The material crystallizes in the monoclinic space group P2(1)/n with a = 7.3248(2), b = 16.7369(4), and c = 8.7905 (2) A, beta = 89.596 (2) degrees, V = 1077.65(7) A(3), and Z = 4, as determined by Rietveld refinement of neutron powder diffraction data at 1.35 K. The 5 K neutron powder diffraction data reflect very little variation in the crystal structure. Interpenetrating ReO3-like networks are formed from axially elongated Mn(2+) octahedra and edges made up of mu-bonded N(CN)2 anions and neutral pyz ligands. A three-dimensional antiferromagnetic ordering occurs below T(N) = 2.53(2) K. The magnetic unit cell is double the nuclear one along the a- and c-axes, giving the (1/2, 0, 1/2) superstructure. The crystallographic and antiferromagnetic structures are commensurate and consist of collinear Mn(2+) moments, each with a magnitude of 4.15(6) mu(B) aligned parallel to the a-direction (Mn-pyz-Mn chains). Electronic structure calculations indicate that the exchange interaction is much stronger along the Mn-pyz-Mn chain axis than along the Mn-NCNCN-Mn axes by a factor of approximately 40, giving rise to a predominantly one-dimensional magnetic system. Thus, the variable-temperature magnetic susceptibility data are well described by a Heisenberg antiferromagnetic chain model, giving g = 2.01(1) and J/k(B) = -0.27(1) K. Owing to single-ion anisotropy of the Mn(2+) ion, field-induced phenomena ascribed to spin-flop and paramagnetic transitions are observed at 0.43 and 2.83 T, respectively.
利用直流磁化、交流磁化率、比热和中子衍射,我们详细研究了Mn[N(CN)₂]₂(pyz)(pyz = 吡嗪)的磁性。通过对1.35 K下中子粉末衍射数据进行Rietveld精修,确定该材料结晶于单斜空间群P2(1)/n,a = 7.3248(2) Å,b = 16.7369(4) Å,c = 8.7905(2) Å,β = 89.596(2)°,V = 1077.65(7) ų,Z = 4。5 K时的中子粉末衍射数据表明晶体结构变化很小。由轴向拉长的Mn²⁺八面体以及由μ键合的[N(CN)₂]⁻阴离子和中性pyz配体构成的边形成了互穿的ReO₃类网络。在T(N) = 2.53(2) K以下发生三维反铁磁有序。磁性晶胞在a轴和c轴方向上是核晶胞的两倍,给出(1/2, 0, 1/2)超结构。晶体学结构和反铁磁结构是相称的,由共线的Mn²⁺磁矩组成,每个磁矩大小为4.15(6) μB,平行于a方向排列(Mn-pyz-Mn链)。电子结构计算表明,沿Mn-pyz-Mn链轴的交换相互作用比沿Mn-NCNCN-Mn轴的交换相互作用强约40倍,从而产生了一个主要为一维的磁性系统。因此,变温磁化率数据可以很好地用海森堡反铁磁链模型来描述,得到g = 2.01(1)和J/k(B) = -0.27(1) K。由于Mn²⁺离子的单离子各向异性,分别在0.43和2.83 T观察到了归因于自旋翻转和顺磁转变的场致现象。