Department of Materials Science and Engineering, University of Illinois at Urbana-Champaign, Urbana, Illinois 61801, United States.
Beckman Institute for Advanced Science and Technology, University of Illinois at Urbana-Champaign, Urbana, Illinois 61801, United States.
Nano Lett. 2021 Oct 13;21(19):8340-8347. doi: 10.1021/acs.nanolett.1c02915. Epub 2021 Sep 16.
Efficient long-range charge transport is required for high-performance molecular electronic devices. Resonant transport is thought to occur in single molecule junctions when molecular frontier orbital energy levels align with electrode Fermi levels, thereby enabling efficient transport without molecular or environmental relaxation. Despite recent progress, we lack a systematic understanding of the transition between nonresonant and resonant transport for molecular junctions with different chemical compositions. In this work, we show that molecular junctions undergo a reversible transition from nonresonant tunneling to resonant transport as a function of applied bias. Transient bias-switching experiments show that the nonresonant to resonant transition is reversible with the applied bias. We determine a general quantitative relationship that describes the transition voltage as a function of the molecular frontier orbital energies and electrode Fermi levels. Overall, this work highlights the importance of frontier orbital energy alignment in achieving efficient charge transport in molecular devices.
高效的长程电荷输运对于高性能的分子电子器件至关重要。当分子的前沿轨道能级与电极的费米能级对齐时,共振输运被认为会在单分子结中发生,从而实现无需分子或环境弛豫的高效输运。尽管最近取得了进展,但我们仍然缺乏对不同化学组成的分子结中非共振和共振输运之间转变的系统理解。在这项工作中,我们表明,分子结随着外加偏压的变化会经历从非共振隧穿到共振输运的可逆转变。瞬态偏压开关实验表明,非共振到共振的转变在外加偏压下是可逆的。我们确定了一个通用的定量关系,该关系描述了作为分子前沿轨道能量和电极费米能级函数的转变电压。总的来说,这项工作强调了在分子器件中实现高效电荷输运时,前沿轨道能量对齐的重要性。