Feng Yiwei, Zhang Fengying, Song Xinyu, Bu Yuxiang
School of Chemistry and Chemical Engineering, Shandong University, Jinan, 250100, P. R. China.
Phys Chem Chem Phys. 2017 Feb 22;19(8):5932-5943. doi: 10.1039/c6cp08201g.
While the conductance behavior of carbon-based couplers has been successfully investigated, insight into the magnetic properties of such carbon-based molecule coupled diradical systems is still scarce, and especially the structural effect of such couplers on the magnetic properties is poorly understood. The present work reports three different interference effects on the magnetic properties of carbon-based molecule coupled nitroxide diradicals: twisting, sideways group, and position effects. DFT calculations reveal that (i) torsion does not change their broken-symmetry singlet ground state and antiferromagnetic coupling, but decreases their magnetism; (ii) different linkages of two radical moieties result in different ground states and thus different magnetisms, depending on a combination of meta-sites and para-sites; (iii) the antiferromagnetic coupling with a broken-symmetry singlet ground state is not changed by adding sideways groups, but the coupling magnitude can be tuned by modifying the side-bridge. Discussions on geometries, magnetic properties, SOMO-SOMO splittings, and spin density distributions are made to clarify relevant magnetic behaviors. Clearly, the findings concerning the regulation of the diradicalized material molecules through modifying the carbon-based bridges provide a comprehensive understanding of the magnetism of such carbon-based diradicals and new prospects for the design of building blocks of magnetic functional molecular materials.
虽然碳基耦合器的导电行为已得到成功研究,但对于此类碳基分子耦合双自由基体系的磁性研究仍很匮乏,尤其是此类耦合器对磁性的结构效应还知之甚少。本工作报道了碳基分子耦合氮氧双自由基磁性的三种不同干扰效应:扭曲效应、侧向基团效应和位置效应。密度泛函理论(DFT)计算表明:(i)扭转不改变其破缺对称单重态基态和反铁磁耦合,但会降低其磁性;(ii)两个自由基部分的不同连接方式会导致不同的基态,从而产生不同的磁性,这取决于间位和对位的组合;(iii)添加侧向基团不会改变具有破缺对称单重态基态的反铁磁耦合,但耦合强度可通过修饰侧桥来调节。通过对几何结构、磁性、最高占据分子轨道-最高占据分子轨道(SOMO-SOMO)分裂和自旋密度分布的讨论来阐明相关磁行为。显然,通过修饰碳基桥来调控双自由基化材料分子的研究结果,为全面理解此类碳基双自由基的磁性以及磁性功能分子材料构建单元的设计提供了新的前景。