| Literature DB >> 31943604 |
Pingchuan Shen1, Miaoling Huang2, Jingyu Qian3, Jinshi Li1, Siyang Ding1, Xiao-Shun Zhou2, Bin Xu3, Zujin Zhao1, Ben Zhong Tang1,4.
Abstract
Constructing single-molecule parallel circuits with multiple conduction channels is an effective strategy to improve the conductance of a single molecular junction, but rarely reported. We present a novel through-space conjugated single-molecule parallel circuit (f-4Ph-4SMe) comprised of a pair of closely parallelly aligned p-quaterphenyl chains tethered by a vinyl bridge and end-capped with four SMe anchoring groups. Scanning-tunneling-microscopy-based break junction (STM-BJ) and transmission calculations demonstrate that f-4Ph-4SMe holds multiple conductance states owing to different contact configurations. When four SMe groups are in contact with two electrodes at the same time, the through-bond and through-space conduction channels work synergistically, resulting in a conductance much larger than those of analogous molecules with two SMe groups or the sum of two p-quaterphenyl chains. The system is an ideal model for understanding electron transport through parallel π-stacked molecular systems and may serve as a key component for integrated molecular circuits with controllable conductance.Entities:
Keywords: quantum interference; scanning tunneling microscopy-based break junction; single-molecule parallel circuit; single-molecule wire; through-space conjugation
Year: 2020 PMID: 31943604 DOI: 10.1002/anie.202000061
Source DB: PubMed Journal: Angew Chem Int Ed Engl ISSN: 1433-7851 Impact factor: 15.336