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Mapping orbital changes upon electron transfer with tunnelling microscopy on insulators

Authors :
Patera, Laerte L.
Queck, Fabian
Scheuerer, Philipp
Repp, Jascha
Source :
Nature; February 2019, Vol. 566 Issue: 7743 p245-248, 4p
Publication Year :
2019

Abstract

Electron transfer plays a crucial part in many chemical reactions1,2, including photosynthesis, combustion and corrosion. But even though redox-state transitions change the electronic structure of the molecules involved, mapping these changes at the single-molecule level is challenging. Scanning tunnelling microscopy provides insights into the orbital structure3of single molecules and their interactions4,5, but requires the use of a conductive substrate that keeps molecules in a given charge state and thereby suppresses redox-state transitions. Atomic force microscopy can be used on insulating substrates to obtain structural6and electrostatic7,8information but does not generally access electronic states. Here we show that when synchronizing voltage pulses that steer electron tunnelling between a conductive atomic force microscope tip and a substrate with the oscillation of the tip, we can perform tunnelling experiments on non-conductive substrates and thereby map the orbital structure of isolated molecules as a function of their redox state. This allows us to resolve previously inaccessible electronic transitions in space and energy and to visualize the effects of electron transfer and polaron formation on individual molecular orbitals. We anticipate that our approach will prove useful for the investigation of complex redox reactions and charging-related phenomena with sub-ångström resolution.

Details

Language :
English
ISSN :
00280836 and 14764687
Volume :
566
Issue :
7743
Database :
Supplemental Index
Journal :
Nature
Publication Type :
Periodical
Accession number :
ejs48473831
Full Text :
https://doi.org/10.1038/s41586-019-0910-3