Maekawa Kensuke, Shiomi Daisuke, Ise Tomoaki, Sato Kazunobu, Takui Takeji
Department of Materials Science, Graduate School of Science, Osaka City University, Sumiyoshi-ku, Osaka 558-8585, Japan.
J Phys Chem B. 2005 May 19;109(19):9299-304. doi: 10.1021/jp0441792.
Spin alignments in heterospin chains are examined from numerical calculations of model spin Hamiltonians. The Hamiltonians of the heterospin chains mimic an open-shell molecular assemblage composed of an organic biradical in a singlet (S = 0) ground state and a doublet (S = 1/2) monoradical, which are coupled by intermolecular ferromagnetic exchange interactions. It is found from numerical calculations of the spin Hamiltonians that the spin value S2 of the ground-state singlet biradical embedded in the exchange-coupled assemblage deviates from zero and contributes to the bulk magnetization. The alternating chain is found to have two kinds of ground spin states, a high- and a low-spin state. All the spins are parallel to each other in the high-spin state, which is characterized by the spin correlation function of (S(i).S(j)) = 0.25. On the other hand, the spin alignment in the low-spin state is found to be dependent on the topology of the intermolecular exchange interactions. The energy preference of the two states depends on the relative amplitude of the exchange interactions in the chain. The intermolecular ferromagnetic couplings are competing in the ground-state singlet biradical with the intramolecular antiferromagnetic interaction. The appearance of the two kinds of ground states is attributed to a quantum spin frustration effect inherent in the triangular motif of the competing interactions. Magnetic properties of a zigzag chain complex composed of a nitronyl nitroxide biradical with a singlet ground state and Cu(hfac)2 are examined on the basis of the theoretical calculations. The vanishing magnetic moments, or the product of susceptibility and temperature chiT, at low temperatures observed for the complex are consistent with those of the low-spin state predicted in the theoretical calculations.
通过对模型自旋哈密顿量的数值计算,研究了异自旋链中的自旋排列。异自旋链的哈密顿量模拟了一种开壳层分子组合,该组合由处于单重态(S = 0)基态的有机双自由基和一个双重态(S = 1/2)单自由基组成,它们通过分子间铁磁交换相互作用耦合。从自旋哈密顿量的数值计算中发现,嵌入在交换耦合组合中的基态单重态双自由基的自旋值S2偏离零,并对体磁化有贡献。发现交替链有两种基态自旋态,即高自旋态和低自旋态。在高自旋态中,所有自旋相互平行,其特征是自旋相关函数(S(i).S(j))= 0.25。另一方面,发现低自旋态中的自旋排列取决于分子间交换相互作用的拓扑结构。这两种状态的能量偏好取决于链中交换相互作用的相对幅度。分子间铁磁耦合在基态单重态双自由基中与分子内反铁磁相互作用相互竞争。这两种基态的出现归因于竞争相互作用的三角形 motif 中固有的量子自旋阻挫效应。基于理论计算,研究了由具有单重态基态的硝酰基氮氧化物双自由基和Cu(hfac)2组成的锯齿链配合物的磁性。该配合物在低温下观察到的消失磁矩,即磁化率与温度的乘积χT,与理论计算中预测的低自旋态一致。