Published September 5, 2005 | Version v1
Journal article

Controlling the electron transfer mechanism in metal-molecules-metal junctions

  • 1. Department of Chemistry and Chemical Biology, Harvard University, Cambridge, MA 02138 (United States)
  • 2. Dipartimento di Chimica, Centro di Fotochimica CNR, Universita di Ferrara, Via L. Borsari 46, Ferrara 44100 (Italy)

Description

We show how the mechanism of electron transfer through molecules can be switched between different regimes by using Hg-based metal-molecules-metal junctions. The junctions are easy to assemble and allow for hosting of self-assembled monolayers (SAMs) of a large variety of molecular structures. In this paper, we compare results from studies of charge transport across two different types of junctions. The first approach has been reported previously and involves the use of a two-electrode junction, Hg-SAM//SAM-Ag, to measure I-V curves through SAMs formed from different organic molecules [alkanethiols HS(CH2) n-1CH3 (n = 8, 10, 12, 14, 16), oligophenylene thiols HS(C6H4) kH (k = 1, 2, 3), or benzylic homologs of the oligophenylene thiols HSCH2(C6H4) mH (m = 1, 2, 3)]. The molecules incorporated have a very large HOMO-LUMO energy separation and their orbitals cannot align with the Fermi levels of the electrodes under an applied voltage. The molecules therefore behave as insulators, and the electron transport mechanism is characterized by a non-resonant tunneling process. The second approach is new and involves the use of an electrochemical junction, Hg-SAM//SAM-Hg, with SAM formed by electroactive thiol molecules [HS(CH2)10CONHCH2pyRu(NH3)5](PF6)2. Charge transport across the junction is measured using a conventional electrochemical technique, which allows the potentials of the Hg electrodes relative to that of a reference electrode to be controlled with respect to the redox potential of the incorporated redox-active molecules. The incorporated redox sites have energetically low molecular orbitals which can align with the Fermi levels of the electrodes. We show that under this control of potential the electron transport mechanism can be switched to different regimes and the current flowing through the junction can be modulated. The current changes of order of magnitude (NDR effect) as a result of a change of the mechanism of electron transport from non-resonant to resonant tunneling (or hopping)

Additional details

Identifiers

DOI
10.1016/j.electacta.2005.04.049;
PII
S0013-4686(05)00520-7;

Publishing Information

Journal Title
Electrochimica Acta
Journal Volume
50
Journal Issue
25-26
Journal Page Range
p. 4850-4856
ISSN
0013-4686
CODEN
ELCAAV

Conference

Title
From nanostructures to power plants
Acronym
55. annual meeting of the International Society of Electrochemistry (ISE) Electrochemistry
Dates
19-24 Sep 2004
Place
Thessaloniki (Greece)

INIS

Country of Publication
United Kingdom
Country of Input or Organization
International Atomic Energy Agency (IAEA)
INIS RN
38012151
Subject category
S37: INORGANIC, ORGANIC, PHYSICAL AND ANALYTICAL CHEMISTRY;
Resource subtype / Literary indicator
Conference
Descriptors DEI
CHARGED-PARTICLE TRANSPORT; ELECTRODES; ELECTRON TRANSFER; FERMI LEVEL; MERCURY; MOLECULAR STRUCTURE; REDOX POTENTIAL; SILVER; THIOLS; TUNNEL EFFECT
Descriptors DEC
ELEMENTS; ENERGY LEVELS; METALS; ORGANIC COMPOUNDS; ORGANIC SULFUR COMPOUNDS; RADIATION TRANSPORT; TRANSITION ELEMENTS

Optional Information

Copyright
Copyright (c) 2005 Elsevier Science B.V., Amsterdam, The Netherlands, All rights reserved.