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镍双硫纶自旋体系中存在无序-有序转变和显著的位错运动,以及令人惊讶的大磁滞转变。

Disorder-order transformation and significant dislocation motion cooperating with a surprisingly large hysteretic magnetic transition in a nickel-bisdithiolene spin system.

机构信息

State Key Laboratory of Materials-Oriented Chemical Engineering and College of Science, Nanjing University of Technology, Nanjing 210009, People's Republic of China.

出版信息

Inorg Chem. 2013 Apr 1;52(7):3870-7. doi: 10.1021/ic302571p. Epub 2013 Mar 21.

Abstract

The compound [4'-CF3bzPy][Ni(mnt)2] (1) (where 4'-CF3bzPy = 1-(4'-(trifluoromethyl)benzyl)pyridinium and mnt(2-) = maleonitriledithiolate) was synthesized and displays a magnetic bistability with a surprisingly large thermal hysteresis loop (~49 K). X-ray crystallographic studies reveal that in the high-temperature (HT) phase the anions and cations form mixed stacks, with alternating anion dimers (AA) and cation dimers (CC) in an ...AACCAACC... fashion along the crystallographic a + b direction, and disordered CF3 groups in the cations are aligned into a molecular layer parallel to the crystallographic (001) plane. However, in the low-temperature (LT) phase, the c-axis length of the unit cell is roughly doubled, and the asymmetric unit switches from one [4'-CF3bzPy][Ni(mnt)2] pair in the HT phase to two [4'-CF3bzPy][Ni(mnt)2] pairs. Most interestingly, the CF3 group in the cations becomes ordered, and the conformation of one of two crystallographically different cations changes significantly. A dislocation motion between the neighboring molecular layers emerges as well. The analyses of the magnetic susceptibilities and the density functional theory calculations suggest that the antiferromagnetic exchange interaction within one of two types of [Ni(mnt)2]2(2-) dimers in the LT phase is much stronger than that within the [Ni(mnt)2]2(2-) dimer in the HT phase. The lattice reorganization during this phase transition is proposed to be responsible for the wide thermal hysteresis loop.

摘要

化合物[4'-CF3bzPy][Ni(mnt)2](1)(其中 4'-CF3bzPy=1-(4'-(三氟甲基)苄基)吡啶鎓,mnt(2-) = 丙二腈二硫代)被合成,并显示出具有令人惊讶的大热滞回线(约 49 K)的磁双稳性。X 射线晶体学研究表明,在高温(HT)相中,阴离子和阳离子形成混合堆积,沿晶体学 a + b 方向交替出现阴离子二聚体(AA)和阳离子二聚体(CC),无序的 CF3 基团在阳离子中排列成平行于晶体学(001)平面的分子层。然而,在低温(LT)相中,单元胞的 c 轴长度大致增加了一倍,不对称单元从 HT 相中一个[4'-CF3bzPy][Ni(mnt)2]对转变为 LT 相中两个[4'-CF3bzPy][Ni(mnt)2]对。最有趣的是,阳离子中的 CF3 基团变得有序,两个结晶学上不同的阳离子之一的构象发生了显著变化。相邻分子层之间也出现了位错运动。磁性磁化率分析和密度泛函理论计算表明,在 LT 相中两种类型的[Ni(mnt)2]2(2-)二聚体之一内的反铁磁交换相互作用比 HT 相中[Ni(mnt)2]2(2-)二聚体强得多。提出晶格重排是导致宽热滞回线的原因。

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