p-O2NC6F4CNSSN- 二噻二唑基分子自由基的实验电荷密度分析

IF 4.3 3区 材料科学 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC ACS Applied Electronic Materials Pub Date : 2024-10-07 DOI:10.1021/acs.cgd.4c0042910.1021/acs.cgd.4c00429
Ariste Bolivard Voufack, A. Bernard Dippenaar, Catharine Esterhuysen, Delia A. Haynes*, Mohamed Souhassou, Claude Lecomte and Nicolas Claiser*, 
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引用次数: 0

摘要

在 100 K 的高分辨率 X 射线衍射实验中测定了 p-O2NC6F4CNSSN-(一种二噻二唑自由基)的实验电子密度分布。分子沿着[110]方向的 2 折叠轴存在电极化,这也是分子的对称轴。对电子密度拓扑特性的分析表明了一系列相互作用。在之前被认为对自旋间通信具有重要意义的 S-N 接触点上出现了一个键临界点,这证实了这些带有自旋的原子之间存在着分子间相互作用。对有机铁磁体进行的高分辨率 X 射线衍射实验对该分子的电荷密度进行了详细分析。对有机铁磁体进行的高分辨率 X 射线衍射实验详细分析了这种分子中的电荷密度,并通过实验证实,S 原子和 N 原子周围电荷密度的正交取向有利于通过这种材料的晶体结构产生铁磁相互作用。
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Experimental Charge Density Analysis of p-O2NC6F4CNSSN•, a Dithiadiazolyl Molecular Radical

The experimental electron density distribution of p-O2NC6F4CNSSN, a dithiadiazolyl radical, has been determined from a high-resolution X-ray diffraction experiment at 100 K. The atomic charges obtained according to Bader partitioning through integration over the atomic basins reveal charge transfer from the –CNSSN ring to the –NO2 moiety. There is an electric polarization of the molecule along the 2-fold axis in the [110] direction, which is also a symmetry axis of the molecule. Analysis of the topological properties of the electron density has evidenced a range of interactions. The presence of a bond critical point along the S···N contacts previously identified as significant for communication between spins confirms an intermolecular interaction between these spin-bearing atoms. Particular attention has been given to the charge density spatial orientation around the sulfur and nitrogen atoms because of the previously identified role of these atoms in the appearance of ferromagnetism at very low temperatures.

A high-resolution X-ray diffraction experiment on an organic ferromagnet has allowed a detailed analysis of the charge density in this molecule. This has confirmed through experiment that the orthogonal orientation of the charge density around the S and N atoms favors ferromagnetic interactions through the crystal structure of this material.

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