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Controlling the Structural and Electrical Properties of Diacid Oligo(Phenylene Ethynylene) Langmuir-Blodgett Films

Year: 2013

Journal: CHEMISTRY-A EUROPEAN JOURNAL, Vol. 19, p 5352-5363, 20150703

Authors: Marina Ballesteros, Luz; Martin, Santiago; Cortes, Javier; Marques-Gonzalez, Santiago; Higgins, Simon J.; Nichols, Richard J.; Low, Paul J.; Cea, Pilar

Organizations: Univ Zaragoza, Fac Ciencias, Dept Quim Fis, E-50009 Zaragoza, Spain; Univ Zaragoza, INA, Zaragoza 50017, Spain; Univ Zaragoza, CSIC, ICMA, Dept Fis Materia Condensada, E-50009 Zaragoza, Spain; LMA, Zaragoza 50018, Spain; Univ Durham, Dept Chem, Durham DH1 3LE, England; Univ Liverpool, Dept Chem, Liverpool L69 7ZD, Merseyside, England

The preparation, characterization and electrical properties of LangmuirBlodgett (LB) films composed of a symmetrically substituted oligomeric phenylene ethynylene derivative, namely, 4,4-[1,4-phenylenebis(ethyne-2,1-diyl)]dibenzoic acid (OPE2A), are described. Analysis of the surface pressure versus area per molecule isotherms and Brewster angle microscopy reveal that good-quality Langmuir (L) films can be formed both on pure water and a basic subphase. Monolayer L films were transferred onto solid substrates with a transfer ratio of unity to obtain LB films. Both L and LB films prepared on or from a pure water subphase show a red shift in the UV/Vis spectrum of about 14nm, in contrast to L and LB films prepared from a basic subphase, which show a hypsochromic shift of 15nm. This result, together with X-ray photoelectron spectroscopic and quartz crystal microbalance experiments, conclusively demonstrate formation of one-layer LB films in which OPE2A molecules are chemisorbed onto gold substrates and consequently COOAu junctions are formed. In LB films prepared on a basic subphase the other terminal acid group is also deprotonated and associates with an Na+ counterion. In contrast, LB films prepared from a pure water subphase preserve the protonated acid group, and lateral H-bonds with neighbouring molecules give rise to a supramolecular structure. STM-based conductance studies revealed that films prepared from a basic subphase are more conductive than the analogous films prepared from pure water, and the electrical conductance of the deprotonated films also coincides more closely with single-molecule conductance measurements. This result was interpreted not only in terms of better electron transmission in COOAu molecular junctions, but also in terms of the presence of lateral H-bonds in the films formed from pure water, which lead to reduced conductance of the molecular junctions.