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Theoretical design of high-spin polycyclic hydrocarbons

机译:高自旋多环烃的理论设计

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摘要

High-spin organic structures can be obtained from fused polycyclic hydrocarbons, by converting selected peripheral HC(sp~2) sites into H~2C(sp~3) ones, guided by Ovchinnikov's rule. Theoretical investigation is performed on a few examples of such systems, involving three to twelve fused rings, and maintaining threefold symmetry. Unrestricted DFT (UDFT) calculations, including geometry optimizations, confirm the high-spin multiplicity of the ground state. Spin-density distributions and low-energy spectra are further studied through geometry-dependent Heisenberg-Hamiltonian diagonalizations and explicit correlated ab initio treatments, which all agree on the high-spin character of the suggested structures, and locate the low-lying states at significantly higher energies. In particular, the lowest-lying state of lower multiplicity is always found to be higher than kT at room temperature (at least ten times higher). Simplification of the ferromagnetic organization based on sets of semilocalized nonbonding orbitais is proposed. Molecular architectures are thus conceived in which the ferromagnetically-coupled unpaired electrons tally up to one third of the involved conjugated carbons. Connecting such building blocks should provide bidimensional materials endowed with robust magnetic properties.
机译:在奥夫金尼科夫定律的指导下,通过将选定的周边HC(sp〜2)位点转化为H〜2C(sp〜3)位点,可以从稠合多环烃获得高自旋有机结构。对此类系统的一些示例进行了理论研究,涉及三到十二个稠环,并保持三重对称性。无限制的DFT(UDFT)计算(包括几何优化)确认了基态的高自旋多重性。通过几何相关的海森堡-汉密尔顿对角化和显式相关的从头算起的方法进一步研究了自旋密度分布和低能谱,这些都同意了所建议结构的高自旋特性,并将低处的状态定位在更高的能量。特别是,在室温下,总是发现多重性最低的最低状态高于kT(至少高出十倍)。提出了基于半局部无键轨道集的铁磁组织的简化方法。因此构想了分子结构,其中铁磁耦合的不成对电子相符直到所涉及的共轭碳的三分之一。连接此类构建块应提供具有强大磁性能的二维材料。

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