Literature DB >> 25233125

High-conductive organometallic molecular wires with delocalized electron systems strongly coupled to metal electrodes.

Florian Schwarz1, Georg Kastlunger, Franziska Lissel, Heike Riel, Koushik Venkatesan, Heinz Berke, Robert Stadler, Emanuel Lörtscher.   

Abstract

Besides active, functional molecular building blocks such as diodes or switches, passive components, for example, molecular wires, are required to realize molecular-scale electronics. Incorporating metal centers in the molecular backbone enables the molecular energy levels to be tuned in respect to the Fermi energy of the electrodes. Furthermore, by using more than one metal center and sp-bridging ligands, a strongly delocalized electron system is formed between these metallic "dopants", facilitating transport along the molecular backbone. Here, we study the influence of molecule-metal coupling on charge transport of dinuclear X(PP)2FeC4Fe(PP)2X molecular wires (PP = Et2PCH2CH2PEt2); X = CN (1), NCS (2), NCSe (3), C4SnMe3 (4), and C2SnMe3 (5) under ultrahigh vacuum and variable temperature conditions. In contrast to 1, which showed unstable junctions at very low conductance (8.1 × 10(-7) G0), 4 formed a Au-C4FeC4FeC4-Au junction 4' after SnMe3 extrusion, which revealed a conductance of 8.9 × 10(-3) G0, 3 orders of magnitude higher than for 2 (7.9 × 10(-6) G0) and 2 orders of magnitude higher than for 3 (3.8 × 10(-4) G0). Density functional theory (DFT) confirmed the experimental trend in the conductance for the various anchoring motifs. The strong hybridization of molecular and metal states found in the C-Au coupling case enables the delocalized electronic system of the organometallic Fe2 backbone to be extended over the molecule-metal interfaces to the metal electrodes to establish high-conductive molecular wires.

Entities:  

Keywords:  Break-Junctions; Density Functional Theory; Electronic Transport; Molecular Wire; Organometallic Compounds; Single-Molecule Junctions

Year:  2014        PMID: 25233125     DOI: 10.1021/nl5029045

Source DB:  PubMed          Journal:  Nano Lett        ISSN: 1530-6984            Impact factor:   11.189


  6 in total

1.  Field-induced conductance switching by charge-state alternation in organometallic single-molecule junctions.

Authors:  Florian Schwarz; Georg Kastlunger; Franziska Lissel; Carolina Egler-Lucas; Sergey N Semenov; Koushik Venkatesan; Heinz Berke; Robert Stadler; Emanuel Lörtscher
Journal:  Nat Nanotechnol       Date:  2015-11-16       Impact factor: 39.213

2.  Ferrocene- and Biferrocene-Containing Macrocycles towards Single-Molecule Electronics.

Authors:  Lucy E Wilson; Christopher Hassenrück; Rainer F Winter; Andrew J P White; Tim Albrecht; Nicholas J Long
Journal:  Angew Chem Int Ed Engl       Date:  2017-05-12       Impact factor: 15.336

3.  Single-Molecule Conductance Studies of Organometallic Complexes Bearing 3-Thienyl Contacting Groups.

Authors:  Sören Bock; Oday A Al-Owaedi; Samantha G Eaves; David C Milan; Mario Lemmer; Brian W Skelton; Henrry M Osorio; Richard J Nichols; Simon J Higgins; Pilar Cea; Nicholas J Long; Tim Albrecht; Santiago Martín; Colin J Lambert; Paul J Low
Journal:  Chemistry       Date:  2017-01-16       Impact factor: 5.236

4.  Electronic transport through single-molecule oligophenyl-diethynyl junctions with direct gold-carbon bonds formed at low temperature.

Authors:  Gautam Mitra; Vincent Delmas; Hassan Al Sabea; Lucie Norel; Olivier Galangau; Stéphane Rigaut; Jérôme Cornil; Karine Costuas; Elke Scheer
Journal:  Nanoscale Adv       Date:  2021-11-30

5.  Chemically Laminated 2D Bis(terpyridine)metal Polymer Films: Formation Mechanism at the Liquid-Liquid Interface and Redox Rectification.

Authors:  Joe Komeda; Kenji Takada; Hiroaki Maeda; Naoya Fukui; Takuya Tsuji; Hiroshi Nishihara
Journal:  Chemistry       Date:  2022-07-04       Impact factor: 5.020

Review 6.  Prospects of Coupled Organic-Inorganic Nanostructures for Charge and Energy Transfer Applications.

Authors:  Anja Maria Steiner; Franziska Lissel; Andreas Fery; Jannika Lauth; Marcus Scheele
Journal:  Angew Chem Int Ed Engl       Date:  2020-09-17       Impact factor: 15.336

  6 in total

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