| Literature DB >> 33420002 |
Jinshi Li1, Pingchuan Shen1, Shijie Zhen1, Chun Tang2, Yiling Ye2, Dahai Zhou2, Wenjing Hong3, Zujin Zhao4, Ben Zhong Tang1,5.
Abstract
Molecular potentiometers that can indicate displacement-conductance relationship, and predict and control molecular conductance are of significant importance but rarely developed. Herein, single-molecule potentiometers are designed based on ortho-pentaphenylene. The ortho-pentaphenylene derivatives with anchoring groups adopt multiple folded conformers and undergo conformational interconversion in solutions. Solvent-sensitive multiple conductance originating from different conformers is recorded by scanning tunneling microscopy break junction technique. These pseudo-elastic folded molecules can be stretched and compressed by mechanical force along with a variable conductance by up to two orders of magnitude, providing an impressively higher switching factor (114) than the reported values (ca. 1~25). The multichannel conductance governed by through-space and through-bond conducting pathways is rationalized as the charge transport mechanism for the folded ortho-pentaphenylene derivatives. These findings shed light on exploring robust single-molecule potentiometers based on helical structures, and are conducive to fundamental understanding of charge transport in higher-order helical molecules.Entities:
Year: 2021 PMID: 33420002 DOI: 10.1038/s41467-020-20311-z
Source DB: PubMed Journal: Nat Commun ISSN: 2041-1723 Impact factor: 14.919