Theoretical Study of Charge Mobility Poperties of Complexes Si(DPP)(CH3)2 and Si(Bzimpy)(CH3)2

I. Uvarova, A. Aldongarov, Zhadyra Y. Baitassova
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Abstract

The direction of organic electronics research is attracting more and more interest from the scientific community. One of the indicators of such interest is the appearance of commercially available products with screens based on organic compounds. Therefore, conducting experimental and theoretical research in this area is an urgent task. Pentacoordination neutral complexes of silicon are poorly studied from the point of view of application in organic electronics, as well as six-coordination analogues. We present data on the calculation of reorganization energies, intermolecular transfer integrals, transfer rates and charge mobility for the optimized structures of pentacoordinated silicon complexes Si(DPP)(CH3)2 and Si(bzimpy)(CH3)2. We have applied Marcus-Hush model for calculation of charge mobilities. The Si(DPP)(CH3)2 structure contains one diphenylpyridine (DPP = 2,6-diphenylperidine) ligand. The Si(bzimpy)(CH3)2 structure contains one benzimidazole (bzimpy = 2,6-bis(benzimidazole-2'-il)pyridine) ligand. Computational data were obtained using the B3LYP hybrid functional and the basis set 6-31G*. All calculations were performed using Gaussian09 program package. The charge mobility data obtained for Si(DPP)(CH3)2 and Si(bzimpy)(CH3)2 pentacordinated silicon complexes were compared with their six-coordinate counterparts Si(DPP)2 and Si(bzimpy)2 for which experimental data on charge mobilities become available last years. Comparison with six-coordination analogues of complexes showed that penta-coordination complexes Si(DPP)(CH3)2 and Si(bzimpy)(CH3)2 have much higher mobility of electrons, while Si(bzimpy)(CH3)2 also has higher hole mobility. We suppose this could be related to different symmetry of the pentacoordinated and hexacoordinted complexes. It is shown that the mobility of holes is much higher in the complex Si(bzimpy)(CH3)2 than in Si(DPP)(CH3)2.
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配合物Si(DPP)(CH3)2和Si(Bzimpy)(CH3)2电荷迁移特性的理论研究
有机电子学的研究方向越来越受到科学界的关注。这种兴趣的指标之一是市面上出现的基于有机化合物的屏蔽产品。因此,开展这方面的实验和理论研究是一项紧迫的任务。从有机电子学的应用角度来看,硅的五配位中性配合物以及六配位类似物的研究很少。我们给出了五配位硅配合物Si(DPP)(CH3)2和Si(bzimpy)(CH3)2优化结构的重组能、分子间转移积分、转移速率和电荷迁移率的计算数据。我们将Marcus-Hush模型应用于电荷迁移率的计算。Si(DPP)(CH3)2结构含有一个二苯基吡啶(DPP = 2,6-二苯基吡啶)配体。Si(bzimpy)(CH3)2结构含有一个苯并咪唑(bzimpy = 2,6-二(苯并咪唑-2′-il)吡啶)配体。计算数据采用B3LYP混合泛函,基集为6-31G*。所有计算均使用Gaussian09程序包进行。将Si(DPP)(CH3)2和Si(bzimpy)(CH3)2五配位硅配合物的电荷迁移率数据与六配位硅配合物Si(DPP)2和Si(bzimpy)2的电荷迁移率实验数据进行了比较。与六配位类似物的比较表明,五配位配合物Si(DPP)(CH3)2和Si(bzimpy)(CH3)2具有更高的电子迁移率,而Si(bzimpy)(CH3)2也具有更高的空穴迁移率。我们认为这可能与五配位配合物和六配位配合物的不同对称性有关。结果表明,配合物Si(bzimpy)(CH3)2中空穴的迁移率远高于Si(DPP)(CH3)2。
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