Mechanical conductance tunability of a porphyrin-cyclophane single-molecule junction.
Journal
Nanoscale
ISSN: 2040-3372
Titre abrégé: Nanoscale
Pays: England
ID NLM: 101525249
Informations de publication
Date de publication:
20 Jan 2022
20 Jan 2022
Historique:
pubmed:
7
1
2022
medline:
7
1
2022
entrez:
6
1
2022
Statut:
epublish
Résumé
The possibility to study quantum interference phenomena at ambient conditions is an appealing feature of molecular electronics. By connecting two porphyrins in a cofacial cyclophane, we create an attractive platform for mechanically controlling electric transport through the intramolecular extent of π-orbital overlap of the porphyrins facing each other and through the angle of xanthene bridges with regard to the porphyrin planes. We analyze theoretically the evolution of molecular configurations in the pulling process and the corresponding changes in electric conduction by combining density functional theory (DFT) with Landauer scattering theory of phase-coherent elastic transport. Predicted conductances during the stretching process show order of magnitude variations caused by two robust destructive quantum interference features that span through the whole electronic gap between the highest occupied molecular orbital (HOMO) and the lowest unoccupied molecular orbital (LUMO). Mechanically-controlled break junction (MCBJ) experiments at room temperature verify the mechanosensitive response of the molecular junctions. During the continuous stretching of the molecule, they show conductance variations of up to 1.5 orders of magnitude over single breaking events. Uncommon triple- and quadruple-frequency responses are observed in periodic electrode modulation experiments with amplitudes of up to 10 Å. This further confirms the theoretically predicted double transmission dips caused by the spatial and energetic rearrangement of molecular orbitals, with contributions from both through-space and through-bond transport.
Identifiants
pubmed: 34989747
doi: 10.1039/d1nr06484c
pmc: PMC8772887
doi:
Types de publication
Journal Article
Langues
eng
Sous-ensembles de citation
IM
Pagination
984-992Références
J Am Chem Soc. 2021 Sep 1;143(34):13944-13951
pubmed: 34424713
Nature. 2009 Dec 24;462(7276):1039-43
pubmed: 20033044
Faraday Discuss. 2014;174:21-35
pubmed: 25283989
J Am Chem Soc. 2008 Jul 23;130(29):9406-13
pubmed: 18576639
J Chem Phys. 2020 May 14;152(18):184107
pubmed: 32414256
Rev Sci Instrum. 2011 May;82(5):053907
pubmed: 21639518
Nano Lett. 2020 Sep 9;20(9):6381-6386
pubmed: 32787164
J Phys Chem B. 2010 Nov 18;114(45):14735-44
pubmed: 20553016
J Phys Chem Lett. 2017 Feb 16;8(4):727-732
pubmed: 28106402
Chem Sci. 2019 Sep 16;10(43):9998-10002
pubmed: 32055356
Nano Lett. 2016 Aug 10;16(8):4733-7
pubmed: 27088578
Nano Lett. 2008 Jan;8(1):345-9
pubmed: 18095741
Nanoscale. 2021 Oct 1;13(37):15500-15525
pubmed: 34558586
J Org Chem. 2020 Jan 3;85(1):118-128
pubmed: 31687814
J Org Chem. 2020 Dec 4;85(23):15072-15081
pubmed: 33166468
J Chem Phys. 2010 Apr 21;132(15):154104
pubmed: 20423165
Nano Lett. 2018 Sep 12;18(9):5981-5988
pubmed: 30134105
Nat Nanotechnol. 2008 Sep;3(9):569-74
pubmed: 18772920
Nat Commun. 2021 Jan 8;12(1):167
pubmed: 33420002
Chem Sci. 2019 Jul 31;10(36):8299-8305
pubmed: 31803408
Nano Lett. 2007 Nov;7(11):3477-82
pubmed: 17900162
Phys Rev Lett. 1996 Oct 28;77(18):3865-3868
pubmed: 10062328
Nat Chem. 2016 Dec;8(12):1099-1104
pubmed: 27874872
Nano Lett. 2010 Jan;10(1):105-10
pubmed: 20000819