Open Access
Highly-conducting molecular circuits based on antiaromaticity
Shintaro Fujii
1
,
Santiago Marqués González
1
,
Ji-Young Shin
2
,
Hiroshi Shinokubo
2
,
Takuya Masuda
3
,
Tomoaki Nishino
1
,
Narendra P Arasu
4
,
Hector Vazquez
4
,
Manabu KIGUCHI
1
Publication type: Journal Article
Publication date: 2017-07-19
scimago Q1
wos Q1
SJR: 4.761
CiteScore: 23.4
Impact factor: 15.7
ISSN: 20411723
PubMed ID:
28722006
General Chemistry
General Biochemistry, Genetics and Molecular Biology
General Physics and Astronomy
Abstract
Aromaticity is a fundamental concept in chemistry. It is described by Hückel’s rule that states that a cyclic planar π-system is aromatic when it shares 4n+2 π-electrons and antiaromatic when it possesses 4n π-electrons. Antiaromatic compounds are predicted to exhibit remarkable charge transport properties and high redox activities. However, it has so far only been possible to measure compounds with reduced aromaticity but not antiaromatic species due to their energetic instability. Here, we address these issues by investigating the single-molecule charge transport properties of a genuinely antiaromatic compound, showing that antiaromaticity results in an order of magnitude increase in conductance compared with the aromatic counterpart. Single-molecule current–voltage measurements and ab initio transport calculations reveal that this results from a reduced energy gap and a frontier molecular resonance closer to the Fermi level in the antiaromatic species. The conductance of the antiaromatic complex is further modulated electrochemically, demonstrating its potential as a high-conductance transistor. Antiaromatic molecules are predicted to have unusual charge transport properties, but are notoriously unstable and reactive. Here, the authors successfully fabricate an antiaromatic molecular circuit, based on a macrocyclic complex, displaying much higher conductance than its aromatic counterpart.
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129
Total citations:
129
Citations from 2024:
22
(17%)
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Fujii S. et al. Highly-conducting molecular circuits based on antiaromaticity // Nature Communications. 2017. Vol. 8. No. 1. 15984
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Fujii S., Marqués González S., Shin J., Shinokubo H., Masuda T., Nishino T., Arasu N. P., Vazquez H., KIGUCHI M. Highly-conducting molecular circuits based on antiaromaticity // Nature Communications. 2017. Vol. 8. No. 1. 15984
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TY - JOUR
DO - 10.1038/ncomms15984
UR - https://www.nature.com/articles/ncomms15984
TI - Highly-conducting molecular circuits based on antiaromaticity
T2 - Nature Communications
AU - Fujii, Shintaro
AU - Marqués González, Santiago
AU - Shin, Ji-Young
AU - Shinokubo, Hiroshi
AU - Masuda, Takuya
AU - Nishino, Tomoaki
AU - Arasu, Narendra P
AU - Vazquez, Hector
AU - KIGUCHI, Manabu
PY - 2017
DA - 2017/07/19
PB - Springer Nature
IS - 1
VL - 8
PMID - 28722006
SN - 2041-1723
ER -
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@article{2017_Fujii,
author = {Shintaro Fujii and Santiago Marqués González and Ji-Young Shin and Hiroshi Shinokubo and Takuya Masuda and Tomoaki Nishino and Narendra P Arasu and Hector Vazquez and Manabu KIGUCHI},
title = {Highly-conducting molecular circuits based on antiaromaticity},
journal = {Nature Communications},
year = {2017},
volume = {8},
publisher = {Springer Nature},
month = {jul},
url = {https://www.nature.com/articles/ncomms15984},
number = {1},
pages = {15984},
doi = {10.1038/ncomms15984}
}