首页> 外文期刊>The journal of physical chemistry, A. Molecules, spectroscopy, kinetics, environment, & general theory >A Molecular Quantum Description of Spin Alignments in Molecule-Based Ferrimagnets: Numerical Calculations of Thermodynamics Properties
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A Molecular Quantum Description of Spin Alignments in Molecule-Based Ferrimagnets: Numerical Calculations of Thermodynamics Properties

机译:基于分子的费里芒分子自旋排列的分子量子描述:热力学性质的数值计算

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摘要

A physical picture of electron spin alignments in organic molecule-based ferrimagnets is given from numerical calculations of magnetic specific heat (C), magnetic entropy (S_(mag)), and magnetic susceptibility (X) as functions of temperature (T) and static magnetic field (B) in terms of a Heisenberg Hamiltonian for an alternating spin chain. The numerical results are compared with those for atom-based ferrimagnets. One of two kinds of spin sites in the chain represents an organic molecule with two S = 1/2 spins, which are coupled to give a ground-state triplet (S = 1) biradical molecule. The biradical molecule is coupled with adjacent S = 1/2 monoradicals by the intermolecular antiferromagnetic interactions. When the strength of the intermolecular antiferromagnetic interactions is dimerized along the chain, three peaks in the C vs T curve appear. Two of the three peaks shift to higher and lower temperatures with increasing magnetic field, B, indicating that one originates in the ferromagnetic nature and the other in the antiferromagnetic nature, respectively. The magnetic entropy, S_(mag), exhibits 3-fold stepwise drops as T is lowered. One of the drops with the stationary value of S_(mag) = k_B ln 2 corresponds to generation of an effective S = 1/2 spin in the unit cell of the chain as a result of the coupling of adjacent S = 1 and S = 1/2 spins. With the aid of quantum Monte Carlo simulations of magnetic susceptibility, X, the ferrimagnetic spin alignment in the alternating molecular chains of biradicals and monoradicals is shown to be equivalent to the ferromagnetic alignment of the effective S = 1/2 spins. A spin polarization effect affording the effective ferromagnetic interactions between the effective S = 1/2 spins is demonstrated in terms of a simple Heisenberg model.
机译:通过基于比热(C),磁熵(S_(mag))和磁化率(X)随温度(T)和静态函数的数值计算,给出了基于有机分子的铁氧体中电子自旋排列的物理图像自旋链的Heisenberg哈密顿量表示的磁场(B)。将数值结果与基于原子的亚铁的结果进行了比较。链中两种自旋位点之一代表具有两个S = 1/2自旋的有机分子,它们耦合形成基态三重态(S = 1)双自由基分子。双自由基分子通过分子间反铁磁相互作用与相邻的S = 1/2单自由基耦合。当分子间反铁磁相互作用的强度沿链二聚时,在C vs T曲线中出现三个峰。随着磁场B的增加,三个峰中的两个移至较高和较低的温度,这表明一个峰分别起源于铁磁性质,另一个峰起源于反铁磁性质。磁熵S_(mag)随着T的降低呈现出3倍的逐步下降。固定值为S_(mag)= k_B ln 2的墨滴之一对应于由于相邻S = 1和S =耦合而在链的晶胞中产生有效S = 1/2自旋1/2转。借助磁化率X的量子蒙特卡罗模拟,双自由基和单自由基的交替分子链中的亚铁磁自旋排列显示为等效S = 1/2自旋的铁磁排列。通过简单的海森堡模型证明了在有效S = 1/2自旋之间提供有效铁磁相互作用的自旋极化效应。

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