Alisa Chernenkaya
University of Mainz
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Featured researches published by Alisa Chernenkaya.
Physica B-condensed Matter | 2016
Antonia Morherr; Sebastian Witt; Alisa Chernenkaya; Jan-Peter Bäcker; G. Schönhense; Michael Bolte; C. Krellner
Abstract New charge transfer crystals of π-conjugated, aromatic molecules (phenanthrene and picene) as donors were obtained by physical vapor transport. The melting behavior, optimization of crystal growth and the crystal structure are reported for charge transfer salts with (fluorinated) tetracyanoquinodimethane (TCNQ-Fx, x=0, 2, 4), which was used as acceptor material. The crystal structures were determined by single-crystal X-ray diffraction. Growth conditions for different vapor pressures in closed ampules were applied and the effect of these starting conditions for crystal size and quality is reported. The process of charge transfer was investigated by geometrical analysis of the crystal structure and by infrared spectroscopy on single crystals. With these three different acceptor strengths and the two sets of donor materials, it is possible to investigate the distribution of the charge transfer systematically. This helps to understand the charge transfer process in this class of materials with π-conjugated donor molecules.
Physical Chemistry Chemical Physics | 2015
K. Medjanik; Alisa Chernenkaya; S. A. Nepijko; Gunnar Öhrwall; Pascale Foury-Leylekian; Pere Alemany; Enric Canadell; G. Schönhense; J.P. Pouget
High-resolution near-edge X-ray absorption fine structure (NEXAFS) measurements at the As M-edge, F K-edge and S L-edge of the Fabre salt (TMTTF)2AsF6 were performed from room temperature (RT) to 90 K, allowing to reach the charge localization regime below Tρ ≈ 230 K and to cross the charge ordering (CO) transition at TCO ≈ 102 K. The F K-edge and S L-edge spectra exhibit several transitions which have been indexed on the basis of first-principles DFT calculations. Upon cooling from RT significant energy shifts up to +0.8 eV and -0.4 eV were observed in transitions exhibited by the F 1s and S 2p spectra respectively, while the As 3p doublet does not show a significant shift. Opposite energy shifts found in the F 1s and S 2p spectra reflect substantial thermal changes in the electronic environment of F atoms of the anion and S atoms of TMTTF. The changes found around the charge localization crossover suggest an increase of the participation of the S d orbitals in the empty states of TMTTF as well as an increase of the strength of donoranion interactions. A new F 1s pre-edge signal detected upon entry into the CO phase is a clear fingerprint of the symmetry breaking occurring at TCO. We propose that this new transition is caused by a substantial mixing between the HOMO of the AsF6(-) anion and the unoccupied part of the TMTTF HOMO conduction band. Analysis of the whole spectra also suggests that the loss of the inversion symmetry associated with the CO is due to an anion displacement increasing the strength of SF interactions. Our data show unambiguously that anions are not, as previously assumed, innocent spectators during the electronic modifications experienced by the Fabre salts upon cooling. In particular the interpretation of the spectra pointing out a thermally dependent mixing of anion wave functions with those of the TMTTF chains demonstrates for the first time the importance of anion-donor interactions.
Solid State Phenomena | 2015
Alisa Chernenkaya; O. V. Koplak; K. Medjanik; A. I. Kotov; R. B. Morgunov; Eduard B. Yagubskii; H. J. Elmers; G. Schönhense
The temperature dependence of electronic and magnetic properties of the organic charge-transfer salt (DOEO)4[HgBr4]·TCE was investigated using magnetometry. The magnetic susceptibility shows a maximum at 40 K followed by an onset of a pronounced increase at 70 K and a constant behavior above 120 K. Implications on the charge carrier density are discussed. Combining the magnetometry with resistivity and ESR measurements we propose a sequence of insulating, metallic and semiconducting behavior with increasing temperature. Our results indicate that (DOEO)4[HgBr4]·TCE is close to the boundary between an insulating and conducting ground state.
European Physical Journal B | 2015
Alisa Chernenkaya; K. Medjanik; P. Nagel; M. Merz; S. Schuppler; Enric Canadell; J.P. Pouget; G. Schönhense
Physical Review B | 2016
Peter Happ; Alexey A. Sapozhnik; Julia Klanke; Philippe Czaja; Alisa Chernenkaya; K. Medjanik; S. Schuppler; P. Nagel; M. Merz; Eva Rentschler; H. J. Elmers
Physical Review B | 2013
H. J. Elmers; Alisa Chernenkaya; K. Medjanik; M. Emmel; G. Jakob; G. Schönhense; Daniel M. Gottlob; Ingo P. Krug; F.M.F. de Groot; A. Gloskovskii
Journal of Chemical Physics | 2016
Alisa Chernenkaya; A. Morherr; Steffen Backes; W. Popp; S. Witt; X. Kozina; S. A. Nepijko; Michael Bolte; K. Medjanik; Gunnar Öhrwall; C. Krellner; Martin Baumgarten; H. J. Elmers; G. Schönhense; Harald O. Jeschke; Roser Valenti
Physica B-condensed Matter | 2010
Roman Morgunov; Alexei Dmitriev; Alisa Chernenkaya; Kaoru Yamamoto; Kyuya Yakushi; Yoshifumi Tanimoto
Journal of Physical Chemistry A | 2016
K. Medjanik; Alisa Chernenkaya; Xeniya Kozina; S. A. Nepijko; Gunnar Öhrwall; Pascale Foury-Leylekian; Pere Alemany; G. Schönhense; Enric Canadell; J.P. Pouget
Journal of Nano-and electronic Physics | 2016
S. A. Nepijko; Alisa Chernenkaya; K. Medjanik; S. V. Chernov; A. A. Sapozhnik; Larysa Valentynivna Odnodvorets; I. Yu. Protsenko; Wilfried Schulze; G. Ertl; G. Schönhense