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A molecular roadmap towards organic donor-acceptor complexes with high-performance thermoelectric response

机译:具有高性能热电反应的有机供体 - 受体复合物的分子路线图

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As a unique class of molecular electronic materials, organic donor-acceptor complexes now exhibit tantalizing prospect for heat-electricity interconversion. Over the past decades, in design of these materials for thermoelectric applications, consistent efforts have been made to synthesize a wide variety of structures and to characterize their properties. However, hitherto, one of the paramount conundrums, namely lack of systematic molecular design principles, has not been addressed yet. Here, based on ab initio calculations, and by comprehensively examining the underlying correlation among thermoelectric power factors, non-intuitive transport processes, and fundamental chemical structures for 13 prototypical organic donor-acceptor complexes, we establish a unified roadmap for rational development of these materials with increased thermoelectric response. We corroborate that the energy levels of frontier molecular orbitals in the isolated donor and acceptor molecules control the charge transfer, electronic property, charge transport, and thermoelectric performance in the solid-state complexes. Our results demonstrate that tailoring a suitable energy-level difference between donor's highest occupied molecular orbital and acceptor's lowest unoccupied molecular orbital holds the key to achieving an outstanding power factor. Moreover, we reveal that the charge-transfer-caused Coulomb scattering governs the charge and thermoelectric transport in organic donor-acceptor complexes.
机译:作为一种独特的分子电子材料,有机供体 - 受体复合物现在表现出诱导的热电互联的前景。在过去的几十年中,在这些用于热电应用的材料的设计中,已经进行了一致的努力来合成各种各样的结构并表征其性质。然而,迄今为止,迄今为止尚未解决,即缺乏系统的分子设计原则之一。在这里,基于AB Initio计算,通过全面检查热电电源因素,非直观运输过程和13种原型有机供体 - 受体复合物的基本化学结构的潜在相关性,我们建立了统一的这些材料的理性发展路线图随着热电反应增加。我们证实了分离的供体和受体分子中的前沿分子轨道的能量水平控制固态配合物中的电荷转移,电子性能,电荷输送和热电性能。我们的结果表明,裁缝供体最高占用的分子轨道和受体最低的未占用分子轨道之间的适当能量水平差异是实现优异功率因数的关键。此外,我们揭示了电荷转移导致的库仑散射治理有机供体 - 受体复合物中的电荷和热电传输。

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