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基于稠合单元的周期性扭曲分子导线用于高效分子内跳跃传输。

Periodically Twisted Molecular Wires Based on a Fused Unit for Efficient Intramolecular Hopping Transport.

作者信息

Asakawa Ryo, Yokoyama Soichi, Yamada Ryo, Maeda Seiya, Ohto Tatsuhiko, Tada Hirokazu, Ie Yutaka

机构信息

The Institute of Scientific and Industrial Research (SANKEN), Osaka University, 8-1 Mihogaoka, Ibaraki, Osaka 567-0047, Japan.

Innovative Catalysis Science Division, Institute for Open and Transdisciplinary Research Initiatives (ICS-OTRI), Osaka University, 2-1 Yamadaoka, Suita, Osaka 565-0871, Japan.

出版信息

J Am Chem Soc. 2024 Aug 21;146(33):23529-23536. doi: 10.1021/jacs.4c07548. Epub 2024 Aug 12.

Abstract

Realizing efficient long-distance intramolecular charge transport based on a hopping mechanism is a key challenge in molecular electronics. In hopping transport, a smaller reorganization energy (λ) and energy difference between hopping sites (Δ) should lead to a smaller activation energy and faster charge transfer. However, the development of π-extended molecules that meet these requirements is challenging. In this study, we successfully synthesized several nanometer-scale π-extended molecules composed of a fused π-conjugated unit as a hopping site for reducing λ. Conformational twists between fused units effectively localize π-conjugation in each unit, contributing to reducing Δ. The expected electronic structures of the oligomers were confirmed using spectroscopic and electrochemical measurements. Single-molecule conductance measurements exhibited higher conductance and lower activation energy than those of nonfused oligothiophenes. First-principles calculations indicated that smaller λ and Δ values explain the high conductance. These results highlight the efficiency of the proposed molecular design for effective intramolecular hopping transport.

摘要

基于跳跃机制实现高效的长距离分子内电荷传输是分子电子学中的一个关键挑战。在跳跃传输中,较小的重组能(λ)和跳跃位点之间的能量差(Δ)应导致较小的活化能和更快的电荷转移。然而,开发满足这些要求的π-扩展分子具有挑战性。在本研究中,我们成功合成了几种纳米级的π-扩展分子,这些分子由稠合的π-共轭单元组成,作为用于降低λ的跳跃位点。稠合单元之间的构象扭曲有效地将π-共轭局限在每个单元中,有助于降低Δ。使用光谱和电化学测量证实了低聚物的预期电子结构。单分子电导测量显示出比未稠合的寡聚噻吩更高的电导和更低的活化能。第一性原理计算表明,较小的λ和Δ值解释了高电导。这些结果突出了所提出的分子设计对于有效分子内跳跃传输的效率。

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