Xie Yu, Qiu Shengzhe, Guo Qianqian, Li Chengtai, Chen Ningyue, Zhou Ziming, Yang Zhenyu, Cao Zhou, Wang Tao, Du Wei, Wang Lejia, Li Yuan
Key Laboratory of Organic Optoelectronics and Molecular Engineering, Department of Chemistry, Tsinghua University Beijing 100084 P. R. China
Institute of Functional Nano & Soft Materials (FUNSOM), Soochow University Suzhou Jiangsu 215123 P. R. China
Chem Sci. 2024 Jun 27;15(32):12721-12731. doi: 10.1039/d4sc02829e. eCollection 2024 Aug 14.
Molecular tunneling junctions based on self-assembled monolayers (SAMs) have demonstrated rectifying characteristics at the nanoscale that can hardly be achieved using traditional approaches. However, defects in SAMs result in high leakage when applying bias. The poor performance of molecular diodes compared to silicon or thin-film devices limits their further development. In this study, we show that incorporating "mixed backbones" with flexible-rigid structures into molecular junctions can dynamically block tunneling currents, which is difficult to realize using non-molecular technology. Our idea is achieved by the interaction between interfacial dipole moments and electric field, triggering structured packing in SAMs. Efficient blocking of leakage by more than an order of magnitude leads to a significant enhancement of the rectification ratio to the initial value. The rearrangement of supramolecular structures has also been verified through electrochemistry and electroluminescence measurements. Moreover, the enhanced rectification is extended to various challenging environments, including endurance measurements, bending of electrodes, and rough electrodes, thus demonstrating the feasibility of the dynamic behavior of molecules for practical electronic applications.
基于自组装单分子层(SAMs)的分子隧道结在纳米尺度上展现出了整流特性,这是传统方法很难实现的。然而,自组装单分子层中的缺陷会导致在施加偏压时出现高泄漏电流。与硅或薄膜器件相比,分子二极管的性能较差,这限制了它们的进一步发展。在本研究中,我们表明将具有柔性-刚性结构的“混合主链”纳入分子结中可以动态地阻断隧道电流,这是使用非分子技术难以实现的。我们的想法是通过界面偶极矩与电场之间的相互作用来实现的,从而引发自组装单分子层中的结构化堆积。将泄漏电流有效阻断超过一个数量级会导致整流比显著提高至初始值。超分子结构的重排也已通过电化学和电致发光测量得到验证。此外,增强的整流特性扩展到了各种具有挑战性的环境中,包括耐久性测量、电极弯曲和粗糙电极,从而证明了分子动态行为在实际电子应用中的可行性。