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Dive into the research topics where Oleksandr Ivasenko is active.

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Featured researches published by Oleksandr Ivasenko.


Small | 2009

Synthesis of Polyphenylene Molecular Wires by Surface‐Confined Polymerization

Josh Lipton-Duffin; Oleksandr Ivasenko; Dmitrii F. Perepichka; Federico Rosei

The surface-mediated synthesis of epitaxially aligned and separated polyphenylene lines on Cu(110) by exploiting the Ullmann dehalogenation reaction is reported. Scanning tunneling microscopy (STM) and X-ray photoelectron spectroscopy (XPS) show that the C-I bonds of 1,4-diiodobenzene and 1,3-diiodobenzene (C(6)H(4)I(2)) are catalytically cleaved when dosed onto the surface. Subsequent annealing transforms the copper-bound phenylene intermediates into covalent conjugated structures: linear chains of poly(p-phenylene) for 1,4-diiodobenzene and zigzag chains of poly(m-phenylene) as well as macrocyclic oligomers in the case of 1,3-diiodobenzene. The chains are strongly bound to the surface (likely through C--Cu bonds at the chain-ends) while the macrocycles are very mobile and can only be imaged by STM at low temperature. The detached halogens adsorb on the surface and separate the polymer chains from each other.


Journal of the American Chemical Society | 2009

Supramolecular ordering in oligothiophene−fullerene monolayers

Jennifer M. MacLeod; Oleksandr Ivasenko; Chaoying Fu; Tyler Taerum; Federico Rosei; Dmitrii F. Perepichka

Scanning tunneling microscopy (STM) of monolayers comprising oligothiophene and fullerene molecular semiconductors reveals details of their molecular-scale phase separation and ordering with potential implications for the design of organic electronic devices, in particular future bulk heterojunction solar cells. Prochiral terthienobenzenetricarboxylic acid (TTBTA) self-assembles at the solution/graphite interface into either a porous chicken wire network linked by dimeric hydrogen bonding associations of COOH groups (R(2)(2) (8)) or a close-packed network linked in a novel hexameric hydrogen bonding motif (R(6)(6) (24)). Analysis of high-resolution STM images shows that the chicken wire phase is racemically mixed, whereas the close-packed phase is enantiomerically pure. The cavities of the chicken wire structure can efficiently host C60 molecules, which form ordered domains with either one, two, or three fullerenes per cavity. The observed monodisperse filling and long-range co-alignment of fullerenes is described in terms of a combination of an electrostatic effect and the commensurability between the graphite and molecular network, which leads to differentiation of otherwise identical adsorption sites in the pores.


Chemistry: A European Journal | 2008

Combining High Electron Affinity and Intramolecular Charge Transfer in 1,3‐Dithiole–Nitrofluorene Push–Pull Diads

Dmitrii F. Perepichka; Igor F. Perepichka; Oleksandr Ivasenko; Adrian J. Moore; Martin R. Bryce; L. G. Kuz'mina; Andrei S. Batsanov; Nikolai I. Sokolov

Attaching electron-rich 1,3-dithiol-2-ylidene moieties to polynitrofluorene electron acceptors leads to the formation of highly conjugated compounds 6 to 11, which combine high electron affinity with a pronounced intramolecular charge transfer (ICT) that is manifested as an intense absorption band in their visible spectra. Such a rare combination of optical and electronic properties is beneficial for several applications in optoelectronics. Thus, incorporation of fluorene-dithiole derivative 6a into photoconductive films affords photothermoplastic storage media with dramatically increased photosensitivity in the ICT region. A wide structural variation of the dithiole and fluorene parts of the molecules reveals excellent correlation between the ICT energy and the reduction potential with the Hammetts parameters for the substituents. Although only a small solvatochromism of the ICT band was observed, heating the solution led to a pronounced blueshift, which was probably as a result of increased twisting around the C9=C14 bond that links the fluorene and dithiole moieties. X-ray crystallographic analysis of 7a, 8a, 10a, 11a and 13a confirms an ICT interaction in the ground state of the molecules. The C9=C14 double bond between the donor and acceptor is substantially elongated and its length increases as the donor character of the dithiole moiety is enhanced.


Journal of the American Chemical Society | 2006

Rational Modulation of the Periodicity in Linear Hydrogen-Bonded Assemblies of Trimesic Acid on Surfaces

Krishna G. Nath; Oleksandr Ivasenko; Jill A. Miwa; Hung Dang; James D. Wuest; Antonio Nanci; Dmitrii F. Perepichka; Federico Rosei


Chemical Society Reviews | 2011

Mastering fundamentals of supramolecular design with carboxylic acids. Common lessons from X-ray crystallography and scanning tunneling microscopy

Oleksandr Ivasenko; Dmitrii F. Perepichka


Journal of Physical Chemistry C | 2007

Crystal Engineering in Two Dimensions: An Approach to Molecular Nanopatterning

Krishna G. Nath; Oleksandr Ivasenko; Jennifer M. MacLeod; Jill A. Miwa; James D. Wuest; Antonio Nanci; Dmitrii F. Perepichka; Federico Rosei


Chemical Communications | 2011

Halogen bonds as stabilizing interactions in a chiral self-assembled molecular monolayer

Rico Gutzler; Oleksandr Ivasenko; Chaoying Fu; Jaclyn L. Brusso; Federico Rosei; Dmitrii F. Perepichka


Nanoscale | 2015

Tridentate benzylthiols on Au(111): control of self-assembly geometry

Mohamed A. Mezour; Iryna I. Perepichka; Oleksandr Ivasenko; R. Bruce Lennox; Dmitrii F. Perepichka


Small | 2009

Surface polymerization: Small 5/2009

Josh Lipton-Duffin; Oleksandr Ivasenko; Dmitrii F. Perepichka; Federico Rosei


Science & Engineering Faculty | 2009

Supramolecular assembly of heterocirculenes in 2D and 3D

Oleksandr Ivasenko; Jennifer M. MacLeod; Konstantin Yu. Chernichenko; Elizabeth S. Balenkova; Roman V. Shpanchenko; Valentine G. Nenajdenko; Federico Rosei; Dmitrii F. Perepichka

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Federico Rosei

Institut national de la recherche scientifique

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Jennifer M. MacLeod

Queensland University of Technology

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Antonio Nanci

Université de Montréal

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James D. Wuest

Université de Montréal

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Josh Lipton-Duffin

Institut national de la recherche scientifique

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