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Control of dominant conduction orbitals by peripheral substituents in paddle-wheel diruthenium alkynyl molecular junctions

Control of charge carriers that transport through the molecular junctions is essential for thermoelectric materials. In general, the charge carrier depends on the dominant conduction orbitals and is dominantly determined by the terminal anchor groups. The present study discloses the synthesis, physi...

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Autores principales: Ogawa, Shiori, Chattopadhyay, Swarup, Tanaka, Yuya, Ohto, Tatsuhiko, Tada, Tomofumi, Tada, Hirokazu, Fujii, Shintaro, Nishino, Tomoaki, Akita, Munetaka
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8372547/
https://www.ncbi.nlm.nih.gov/pubmed/34476066
http://dx.doi.org/10.1039/d1sc02407h
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author Ogawa, Shiori
Chattopadhyay, Swarup
Tanaka, Yuya
Ohto, Tatsuhiko
Tada, Tomofumi
Tada, Hirokazu
Fujii, Shintaro
Nishino, Tomoaki
Akita, Munetaka
author_facet Ogawa, Shiori
Chattopadhyay, Swarup
Tanaka, Yuya
Ohto, Tatsuhiko
Tada, Tomofumi
Tada, Hirokazu
Fujii, Shintaro
Nishino, Tomoaki
Akita, Munetaka
author_sort Ogawa, Shiori
collection PubMed
description Control of charge carriers that transport through the molecular junctions is essential for thermoelectric materials. In general, the charge carrier depends on the dominant conduction orbitals and is dominantly determined by the terminal anchor groups. The present study discloses the synthesis, physical properties in solution, and single-molecule conductance of paddle-wheel diruthenium complexes 1R having diarylformamidinato supporting ligands (DArF: p-R-C(6)H(4)-NCHN-C(6)H(4)-R-p) and two axial thioanisylethynyl conducting anchor groups, revealing unique substituent effects with respect to the conduction orbitals. The complexes 1R with a few different aryl substituents (R = OMe, H, Cl, and CF(3)) were fully characterized by spectroscopic and crystallographic analyses. The single-molecule conductance determined by the scanning tunneling microscope break junction (STM-BJ) technique was in the 10(−5) to 10(−4)G(0) region, and the order of conductance was 1OMe > 1CF3 ≫ 1H ∼ 1Cl, which was not consistent with the Hammett substituent constants σ of R. Cyclic voltammetry revealed the narrow HOMO–LUMO gaps of 1R originating from the diruthenium motif, as further supported by the DFT study. The DFT-NEGF analysis of this unique result revealed that the dominant conductance routes changed from HOMO conductance (for 1OMe) to LUMO conductance (for 1CF3). The drastic change in the conductance properties originates from the intrinsic narrow HOMO–LUMO gaps.
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spelling pubmed-83725472021-09-01 Control of dominant conduction orbitals by peripheral substituents in paddle-wheel diruthenium alkynyl molecular junctions Ogawa, Shiori Chattopadhyay, Swarup Tanaka, Yuya Ohto, Tatsuhiko Tada, Tomofumi Tada, Hirokazu Fujii, Shintaro Nishino, Tomoaki Akita, Munetaka Chem Sci Chemistry Control of charge carriers that transport through the molecular junctions is essential for thermoelectric materials. In general, the charge carrier depends on the dominant conduction orbitals and is dominantly determined by the terminal anchor groups. The present study discloses the synthesis, physical properties in solution, and single-molecule conductance of paddle-wheel diruthenium complexes 1R having diarylformamidinato supporting ligands (DArF: p-R-C(6)H(4)-NCHN-C(6)H(4)-R-p) and two axial thioanisylethynyl conducting anchor groups, revealing unique substituent effects with respect to the conduction orbitals. The complexes 1R with a few different aryl substituents (R = OMe, H, Cl, and CF(3)) were fully characterized by spectroscopic and crystallographic analyses. The single-molecule conductance determined by the scanning tunneling microscope break junction (STM-BJ) technique was in the 10(−5) to 10(−4)G(0) region, and the order of conductance was 1OMe > 1CF3 ≫ 1H ∼ 1Cl, which was not consistent with the Hammett substituent constants σ of R. Cyclic voltammetry revealed the narrow HOMO–LUMO gaps of 1R originating from the diruthenium motif, as further supported by the DFT study. The DFT-NEGF analysis of this unique result revealed that the dominant conductance routes changed from HOMO conductance (for 1OMe) to LUMO conductance (for 1CF3). The drastic change in the conductance properties originates from the intrinsic narrow HOMO–LUMO gaps. The Royal Society of Chemistry 2021-07-08 /pmc/articles/PMC8372547/ /pubmed/34476066 http://dx.doi.org/10.1039/d1sc02407h Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Ogawa, Shiori
Chattopadhyay, Swarup
Tanaka, Yuya
Ohto, Tatsuhiko
Tada, Tomofumi
Tada, Hirokazu
Fujii, Shintaro
Nishino, Tomoaki
Akita, Munetaka
Control of dominant conduction orbitals by peripheral substituents in paddle-wheel diruthenium alkynyl molecular junctions
title Control of dominant conduction orbitals by peripheral substituents in paddle-wheel diruthenium alkynyl molecular junctions
title_full Control of dominant conduction orbitals by peripheral substituents in paddle-wheel diruthenium alkynyl molecular junctions
title_fullStr Control of dominant conduction orbitals by peripheral substituents in paddle-wheel diruthenium alkynyl molecular junctions
title_full_unstemmed Control of dominant conduction orbitals by peripheral substituents in paddle-wheel diruthenium alkynyl molecular junctions
title_short Control of dominant conduction orbitals by peripheral substituents in paddle-wheel diruthenium alkynyl molecular junctions
title_sort control of dominant conduction orbitals by peripheral substituents in paddle-wheel diruthenium alkynyl molecular junctions
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8372547/
https://www.ncbi.nlm.nih.gov/pubmed/34476066
http://dx.doi.org/10.1039/d1sc02407h
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