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羟基作为通过超共轭增强单分子电导的“桥梁”。

Hydroxyl Group as the 'Bridge' to Enhance the Single-Molecule Conductance by Hyperconjugation.

作者信息

Lv Xin, Li Chang, Guo Meng-Meng, Hong Wenjing, Chen Li-Chuan, Zhang Qian-Chong, Chen Zhong-Ning

机构信息

Key Laboratory of Structural Chemistry, Fujian Institute of Research on the Structure of Matter, Chinese Academy of Sciences, Fuzhou 350002, China.

College of Chemistry and Materials Science, Fujian Normal University, Fuzhou 350007, China.

出版信息

Molecules. 2024 May 22;29(11):2440. doi: 10.3390/molecules29112440.

Abstract

For designing single-molecule devices that have both conjugation systems and structural flexibility, a hyperconjugated molecule with a σ-π bond interaction is considered an ideal candidate. In the investigation of conductance at the single-molecule level, since few hyperconjugation systems have been involved, the strategy of building hyperconjugation systems and the mechanism of electron transport within this system remain unexplored. Based on the skipped-conjugated structure, we present a rational approach to construct a hyperconjugation molecule using a hydroxyl group, which serves as a bridge to interact with the conjugated fragments. The measurement of single-molecule conductance reveals a two-fold conductance enhancement of the hyperconjugation system having the 'bridging' hydroxyl group compared to hydroxyl-free derivatives. Theoretical studies demonstrate that the hydroxyl group in the hyperconjugation system connects the LUMO of the two conjugated fragments and opens a through-space channel for electron transport to enhance the conductance.

摘要

对于设计兼具共轭体系和结构灵活性的单分子器件而言,具有σ-π键相互作用的超共轭分子被认为是理想的候选者。在单分子水平的电导研究中,由于涉及的超共轭体系较少,构建超共轭体系的策略以及该体系内的电子传输机制仍未得到探索。基于跳跃共轭结构,我们提出了一种合理的方法,利用羟基构建超共轭分子,该羟基作为桥梁与共轭片段相互作用。单分子电导测量结果表明,与无羟基衍生物相比,具有“桥连”羟基的超共轭体系的电导提高了两倍。理论研究表明,超共轭体系中的羟基连接两个共轭片段的最低未占分子轨道(LUMO),并为电子传输打开一个空间通道以提高电导。

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