Sabuj Md Abdus, Muoh Obinna, Huda Md Masrul, Rai Neeraj
Dave C Swalm School of Chemical Engineering, and Center for Advanced Vehicular Systems, Mississippi State University, Mississippi State, Mississippi, 39762, USA.
Phys Chem Chem Phys. 2022 Oct 5;24(38):23699-23711. doi: 10.1039/d2cp02355e.
High-spin ground-state organic materials with unique spin topology can significantly impact molecular magnetism, spintronics, and quantum computing devices. However, strategies to control the spin topology and alignment of the unpaired spins in different molecular orbitals are not well understood. Here, we report modulating spin distribution along the molecular backbone in high-spin ground-state donor-acceptor (D-A) conjugated polymers. Density functional theory calculations indicate that substitution of different heteroatoms (such as C, Si, N, and Se) alters the aromatic character in the thiadiazole unit of the benzobisthiadiazole (BBT) acceptor and modulates the oligomer length to result in high-spin triplet ground-state, orbital and spin topology. The C, Si, and Se atom substituted polymers show a localized spin density at the two opposite ends of the polymers. However, a delocalized spin distribution is observed in the N substituted polymer. We find that the hybridization (sp sp) of the substituent atom plays an important role in controlling the electronic structure of these materials. This study shows that atomistic engineering is an efficient technique to tune the spin topologies and electronic configurations in the high-spin ground-state donor-acceptor conjugated polymers, compelling synthetic targets for room-temperature magnetic materials.
具有独特自旋拓扑结构的高自旋基态有机材料会对分子磁体、自旋电子学和量子计算设备产生重大影响。然而,控制不同分子轨道中未配对自旋的自旋拓扑结构和排列的策略尚未得到充分理解。在此,我们报告了在高自旋基态供体-受体(D-A)共轭聚合物中沿分子主链调节自旋分布的方法。密度泛函理论计算表明,不同杂原子(如C、Si、N和Se)的取代改变了苯并双噻二唑(BBT)受体噻二唑单元的芳香性,并调节了低聚物长度,从而导致高自旋三重态基态、轨道和自旋拓扑结构。C、Si和Se原子取代的聚合物在聚合物的两个相对端显示出局域自旋密度。然而,在N取代的聚合物中观察到了离域自旋分布。我们发现取代原子的杂化(sp sp)在控制这些材料的电子结构中起着重要作用。这项研究表明,原子工程是一种调节高自旋基态供体-受体共轭聚合物中自旋拓扑结构和电子构型的有效技术,是室温磁性材料引人注目的合成目标。