| Literature DB >> 35289977 |
Saman Naghibi1, Sara Sangtarash2, Varshini J Kumar3, Jian-Zhong Wu4, Martyna M Judd5, Xiaohang Qiao1, Elena Gorenskaia3, Simon J Higgins1, Nicholas Cox5, Richard J Nichols1, Hatef Sadeghi2, Paul J Low3, Andrea Vezzoli1,6.
Abstract
Integrating radical (open-shell) species into non-cryogenic nanodevices is key to unlocking the potential of molecular electronics. While many efforts have been devoted to this issue, in the absence of a chemical/electrochemical potential the open-shell character is generally lost in contact with the metallic electrodes. Herein, single-molecule devices incorporating a 6-oxo-verdazyl persistent radical have been fabricated using break-junction techniques. The open-shell character is retained at room temperature, and electrochemical gating permits in situ reduction to a closed-shell anionic state in a single-molecule transistor configuration. Furthermore, electronically driven rectification arises from bias-dependent alignment of the open-shell resonances. The integration of radical character, transistor-like switching, and rectification in a single molecular component paves the way to further studies of the electronic, magnetic, and thermoelectric properties of open-shell species.Entities:
Keywords: Molecular Devices; Molecular Electronics; Radicals
Year: 2022 PMID: 35289977 PMCID: PMC9322687 DOI: 10.1002/anie.202116985
Source DB: PubMed Journal: Angew Chem Int Ed Engl ISSN: 1433-7851 Impact factor: 16.823