Ultra‐Thin and Highly Insulating Aromatic Monolayers by <i>N</i> ‐Heterocyclic Carbenes

M Mateusz Wróbel (Faculty of Physics, Astronomy and Applied Computer Science, Smoluchowski Institute of Physics Jagiellonian University Krakow Poland) R Raka Ahmed (Department of Chemistry and Nano-Science Center, University of Copenhagen, Universitetsparken 5, DK-2100 Copenhagen, Denmark) W William Bro‐Jørgensen (Department of Chemistry and Nano‐Science Center University of Copenhagen Copenhagen Denmark) K Krzysztof Kozieł (Faculty of Chemistry Jagiellonian University Krakow Poland) C Christian A. Nijhuis (Department of Molecules and Materials MESA+ Institute for Nanotechnology Molecules Center and Center for Brain‐Inspired Nano Systems Faculty of Science and Technology University of Twente Enschede AE the Netherlands) G Gemma C. Solomon (Department of Chemistry and Nano-Science Center, University of Copenhagen, Universitetsparken 5, DK-2100 Copenhagen, Denmark) P Piotr Cyganik (Faculty of Physics, Astronomy and Applied Computer Science, Smoluchowski Institute of Physics Jagiellonian University Krakow Poland)

Abstract

ABSTRACT The efficiency of organic electronic devices relies on application of organic gate dielectric materials. Such organic films should exhibit high chemical/thermal stability, aromatic functionality compatible with organic semiconductors, and low gate leakage currents in combination with low thickness to reduce the operating voltage. An interesting class of materials for such applications are self‐assembled monolayers (SAMs) among which the N ‐heterocyclic carbenes (NHC) are known for their high chemical/thermal stability. The conductivity of NHC SAMs, however, has been sparsely explored and their electrical properties remain controversial. Here we report conductivity analysis for a well‐defined series of aromatic NHC SAMs. Our data show that all analyzed monolayers are highly insulating and in particular the shortest possible NHC of just ∼3.3 Å is by 5 orders of magnitude more insulating than standard insulators based on alkanethiolate SAM of the same length. Our calculations indicate the absence of destructive quantum interference (DQI) effect which has been considered responsible for suppression of conductivity in aromatic molecules. The suppression of SAMs conductivity just via selection of the imidazolium‐based bonding group is conceptually simpler opening possibility of using NHC SAMs as an ultra‐thin, and exceptionally insulating, aromatic monolayers for functionalization of the gate electrodes.

Article Details

Volume / Issue Vol. 65, Issue 33
Published August 10, 2026
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (7)

M

Mateusz Wróbel

Faculty of Physics, Astronomy and Applied Computer Science, Smoluchowski Institute of Physics Jagiellonian University Krakow Poland

R

Raka Ahmed

Department of Chemistry and Nano-Science Center, University of Copenhagen, Universitetsparken 5, DK-2100 Copenhagen, Denmark

W

William Bro‐Jørgensen

Department of Chemistry and Nano‐Science Center University of Copenhagen Copenhagen Denmark

K

Krzysztof Kozieł

Faculty of Chemistry Jagiellonian University Krakow Poland

C

Christian A. Nijhuis

Department of Molecules and Materials MESA+ Institute for Nanotechnology Molecules Center and Center for Brain‐Inspired Nano Systems Faculty of Science and Technology University of Twente Enschede AE the Netherlands

G

Gemma C. Solomon

Department of Chemistry and Nano-Science Center, University of Copenhagen, Universitetsparken 5, DK-2100 Copenhagen, Denmark

P

Piotr Cyganik

Faculty of Physics, Astronomy and Applied Computer Science, Smoluchowski Institute of Physics Jagiellonian University Krakow Poland