Olejnik Adrian, Dec Bartłomiej, Goddard William A, Bogdanowicz Robert
Faculty of Electronics, Telecommunications and Informatics, Gdansk University of Technology, 11/12 G. Narutowicza St., 80-233 Gdańsk, Poland.
Centre for Plasma and Laser Engineering, The Szewalski Institute of Fluid-Flow Machinery, Polish Academy of Sciences, Fiszera 14 St., Gdańsk 80-231, Poland.
J Phys Chem Lett. 2022 Sep 1;13(34):7972-7979. doi: 10.1021/acs.jpclett.2c01679. Epub 2022 Aug 19.
Mechanisms of charge transport in molecular junctions involving hydrogen bonds are complex and remain mostly unclear. This study is focused on the elucidation of the electron transfer in a molecular device consisting of two boron-doped diamond interfaces bound with an aromatic linker and a hydrogen bonding surrogating molecule. The projected local density of states (PLODS) analysis coupled with transmission spectra and current-voltage (-) simulations show that hydrogen bonding through electron-donating hydroxyl groups in the aromatic linker facilitates electron transfer, while the electron-withdrawing carboxyl group inhibits electron transfer across the junction. Moreover, slight variations in the geometry of hydrogen bonding lead to significant changes in the alignment of the energy levels and positions of the transmission modes. As a result, we observe the switching of the electron transport mechanism from tunneling to hopping accompanied by a change in the shape of the - curves and current magnitudes. These results give important information on the tailoring of the electronic properties of molecular junctions.
涉及氢键的分子结中的电荷传输机制复杂,目前大多仍不清楚。本研究聚焦于阐明一种分子器件中的电子转移,该分子器件由两个与芳香族连接体和一个氢键替代分子结合的硼掺杂金刚石界面组成。结合透射光谱和电流 - 电压(I - V)模拟的投影局域态密度(PLODS)分析表明,芳香族连接体中供电子的羟基形成的氢键促进电子转移,而吸电子的羧基则抑制电子穿过结的转移。此外,氢键几何结构的微小变化会导致能级排列和传输模式位置的显著变化。结果,我们观察到电子传输机制从隧穿转变为跳跃,同时伴随着I - V曲线形状和电流大小的变化。这些结果为分子结电子性质的定制提供了重要信息。