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螺旋烯中非共振电子传输机制的证据。

Evidence of an Off-Resonant Electronic Transport Mechanism in Helicenes.

作者信息

de Ara T, Hsu C, Martinez-Garcia A, Baciu B C, Bronk P J, Ornago L, van der Poel S, Lombardi E B, Guijarro A, Sabater C, Untiedt C, van der Zant H S J

机构信息

Departamento de Física Aplicada and Instituto Universitario de Materiales de Alicante (IUMA), Universidad de Alicante, Campus de San Vicente del Raspeig, E-03690 Alicante, Spain.

Department of Quantum Nanoscience, Delft University of Technology, Delft 2628CJ, The Netherlands.

出版信息

J Phys Chem Lett. 2024 Aug 15;15(32):8343-8350. doi: 10.1021/acs.jpclett.4c01425. Epub 2024 Aug 7.

Abstract

Helical molecules have been proposed as candidates for producing spin-polarized currents, even at room conditions, due to their chiral asymmetry. However, describing their transport mechanism in single molecular junctions is not straightforward. In this work, we show the synthesis of two novel kinds of dithia[11]helicenes to study their electronic transport in break junctions among a series of three helical molecules: dithia[]helicenes, with = 7, 9, and 11 molecular units. Our experimental measurements and clustering-based analysis demonstrate low conductance values that remain similar across different applied voltages and molecules. Additionally, we assess the length dependence of the conductance for each helicene, revealing an exponential decay characteristic of off-resonant transport. This behavior is primarily attributed to the misalignment between the energy levels of the molecule-electrodes system. The length dependence trend described above is supported by calculations, further confirming an off-resonant transport mechanism.

摘要

由于其手性不对称性,螺旋分子已被提议作为产生自旋极化电流的候选者,即使在室温条件下也是如此。然而,描述它们在单分子结中的传输机制并非易事。在这项工作中,我们展示了两种新型二硫杂[11]螺旋烯的合成,以研究它们在由三个螺旋分子组成的系列中的断结中的电子传输:二硫杂[]螺旋烯,具有 = 7、9 和 11 个分子单元。我们的实验测量和基于聚类的分析表明,在不同的施加电压和分子中,电导值较低且保持相似。此外,我们评估了每个螺旋烯的电导的长度依赖性,揭示了非共振传输的指数衰减特性。这种行为主要归因于分子 - 电极系统能级之间的失准。上述长度依赖性趋势得到了计算的支持,进一步证实了非共振传输机制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/94e9/11331518/615bd2f58029/jz4c01425_0001.jpg

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