An Orthogonal Conductance Pathway in Spiropyrans for Well‐Defined Electrosteric Switching Single‐Molecule Junctions

Author:

Jago David1,Liu Chongguang2,Daaoub Abdalghani H. S.3,Gaschk Emma1,Walkey Mark C.1,Pulbrook Thea1,Qiao Xiaohang2,Sobolev Alexandre N.4,Moggach Stephen A.1,Costa‐Milan David2,Higgins Simon J.2,Piggott Matthew J.1,Sadeghi Hatef3,Nichols Richard J.2,Sangtarash Sara3,Vezzoli Andrea2ORCID,Koutsantonis George A.1ORCID

Affiliation:

1. School of Molecular Science The University of Western Australia 35 Stirling Highway Crawley Western Australia 6009 Australia

2. Department of Chemistry University of Liverpool Crown St Liverpool L69 7ZD UK

3. School of Engineering University of Warwick Coventry CV4 7AL UK

4. Centre for Microscopy Characterisation and Analysis University of Western Australia Stirling Highway Crawley Western Australia 6009 Australia

Abstract

AbstractWhile a multitude of studies have appeared touting the use of molecules as electronic components, the design of molecular switches is crucial for the next steps in molecular electronics. In this work, single‐molecule devices incorporating spiropyrans, made using break junction techniques, are described. Linear spiropyrans with electrode‐contacting groups linked by alkynyl spacers to both the indoline and chromenone moieties have previously provided very low conductance values, and removing the alkynyl spacer has resulted in a total loss of conductance. An orthogonal T‐shaped approach to single‐molecule junctions incorporating spiropyran moieties in which the conducting pathway lies orthogonal to the molecule backbone is described and characterized. This approach has provided singlemolecule conductance features with good correlation to molecular length. Additional higher conducting states are accessible using switching induced by UV light or protonation. Theoretical modeling demonstrates that upon (photo)chemical isomerization to the merocyanine, two cooperating phenomena increase conductance: release of steric hindrance allows the conductance pathway to become more planar (raising the mid‐bandgap transmission) and a bound state introduces sharp interference near the Fermi level of the electrodes similarly responding to the change in state. This design step paves the way for future use of spiropyrans in single‐molecule devices and electrosteric switches.

Funder

Australian Research Council

Royal Society

Engineering and Physical Sciences Research Council

Leverhulme Trust

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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