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Dive into the research topics where Anita Lagutschenkov is active.

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Featured researches published by Anita Lagutschenkov.


Journal of Physical Chemistry A | 2010

Infrared spectra of protonated neurotransmitters: serotonin

Anita Lagutschenkov; Judith Langer; Giel Berden; Jos Oomens; Otto Dopfer

The gas-phase IR spectrum of the protonated neurotransmitter serotonin (5-hydroxytryptamine) was measured in the fingerprint range by means of IR multiple photon dissociation (IRMPD) spectroscopy. The IRMPD spectrum was recorded in a Fourier transform ion cyclotron resonance mass spectrometer coupled to an electrospray ionization source and an IR free electron laser. Quantum chemical calculations at the B3LYP and MP2 levels of theory using the cc-pVDZ basis set yield six low-energy isomers in the energy range up to 40 kJ/mol, all of which are protonated at the amino group. Protonation at the indole N atom or the hydroxyl group is substantially less favorable. The IRMPD spectrum is rich in structure and exhibits 22 distinguishable features in the spectral range investigated (530-1885 cm(-1)). The best agreement between the measured IRMPD spectrum and the calculated linear IR absorption spectra is observed for the conformer lowest in energy at both levels of theory, denoted g-1. In this structure, one of the three protons of the ammonium group points toward the indole subunit, thereby maximizing the intramolecular NH(+)-π interaction between the positive charge of the ammonium ion and the aromatic indole ring. This mainly electrostatic cation-π interaction is further stabilized by significant dispersion forces, as suggested by the substantial differences between the DFT and MP2 energies. The IRMPD bands are assigned to individual normal modes of the g-1 conformer, with frequency deviations of less than 29 cm(-1) (average <13 cm(-1)). The effects of protonation on the geometric and electronic structure are revealed by comparison with the corresponding structural, energetic, electronic, and spectroscopic properties of neutral serotonin.


Physical Chemistry Chemical Physics | 2011

Infrared spectra of the protonated neurotransmitter histamine: competition between imidazolium and ammonium isomers in the gas phase.

Anita Lagutschenkov; Judith Langer; Giel Berden; Jos Oomens; Otto Dopfer

The infrared (IR) spectrum of protonated histamine (histamineH(+)) was recorded in the 575-1900 cm(-1) fingerprint range by means of IR multiple photon dissociation (IRMPD) spectroscopy. The IRMPD spectrum of mass-selected histamineH(+) ions was obtained in a Fourier transform ion cyclotron resonance mass spectrometer coupled to an electrospray ionization source and an IR free electron laser. A variety of isomers were identified and characterized by quantum chemical calculations at the B3LYP and MP2 levels of theory using the cc-pVDZ basis set. The low-energy isomers are derived from various favourable protonation sites--all of which are N atoms--and different orientations of the ethylamine side chain with respect to the heterocyclic imidazole ring. The measured IRMPD spectrum was monitored in the NH(3) loss channel and exhibits 14 bands in the investigated spectral range, which were assigned to vibrational transitions of the most stable isomer, denoted A. This imidazolium-type isomer A with protonation at the imidazole ring and gauche conformation of the ethylamine side chain is significantly stabilized by an intramolecular ionic Nπ-H(+)···Nα hydrogen bond to the ethylamino group. The slightly less stable ammonium-type isomer B with protonation at the ethylamino group is only a few kJ mol(-1) higher in energy and may also provide a minor contribution to the observed IRMPD spectrum. Isomer B is derived from A by simple proton transfer from imidazole to the ethylamino group along the intramolecular Nπ-H(+)···Nα hydrogen bond via a low barrier, which is calculated to be of the order of 5-15 kJ mol(-1). Significantly, the most stable structure of isolated histamineH(+) differs from that in the condensed phase by both the protonation site and the conformation of the side chain, emphasizing the important effects of solvation on the structure and function of this neurotransmitter. The effects of protonation on the geometric and electronic structure of histamine are evaluated by comparing the calculated properties of isomer A with those of the most stable structure of neutral histamine A(n).


Journal of Physical Chemistry A | 2013

Vibrational Spectra and Structures of Neutral SimCn Clusters (m + n = 6): Sequential Doping of Silicon Clusters with Carbon Atoms

Marco Savoca; Anita Lagutschenkov; Judith Langer; Daniel J. Harding; André Fielicke; Otto Dopfer

Vibrational spectra of mixed silicon carbide clusters Si(m)C(n) with m + n = 6 in the gas phase are obtained by resonant infrared-vacuum-ultraviolet two-color ionization (IR-UV2CI for n ≤ 2) and density functional theory (DFT) calculations. Si(m)C(n) clusters are produced in a laser vaporization source, in which the silicon plasma reacts with methane. Subsequently, they are irradiated with tunable IR light from an IR free electron laser before they are ionized with UV photons from an F(2) laser. Resonant absorption of one or more IR photons leads to an enhanced ionization efficiency for Si(m)C(n) and provides the size-specific IR spectra. IR spectra measured for Si(6), Si(5)C, and Si(4)C(2) are assigned to their most stable isomers by comparison with calculated linear absorption spectra. The preferred Si(m)C(n) structures with m + n = 6 illustrate the systematic transition from chain-like geometries for bare C(6) to three-dimensional structures for bare Si(6). In contrast to bulk SiC, carbon atom segregation is observed already for the smallest n (n = 2).


Chemistry: A European Journal | 2010

Chiral Transformation in Protonated and Deprotonated Adipic Acids through Multistep Internal Proton Transfer

Seung Kyu Min; Mina Park; N. Jiten Singh; Han Myoung Lee; Eun Cheol Lee; Kwang S. Kim; Anita Lagutschenkov; Gereon Niedner-Schatteburg

Protonated and deprotonated adipic acids (PAA: HOOC-(CH(2))(4)--COOH(2) (+) and DAA: HOOC-(CH(2))(4)-COO(-)) have a charged hydrogen bond under the influence of steric constraint due to the molecular skeleton of a circular ring. Despite the similarity between PAA and DAA, it is surprising that the lowest energy structure of PAA is predicted to have (H(2)O...H...OH(2))(+) Zundel-like symmetric hydrogen bonding, whereas that of DAA has H(3)O(+) Eigen-like asymmetric hydrogen bonding. The energy profiles show that direct proton transfer between mirror image structures is unfavorable. Instead, the chiral transformation is possible by subsequent backbone twistings through stepwise proton transfer along multistep intermediate structures, which are Zundel-like ions for PAA and Eigen-like ions for DAA. This type of chiral transformation by multistep intramolecular proton transfers is unprecedented. Several prominent OH...O short hydrogen-bond stretching peaks are predicted in the range of 1000-1700 cm(-1) in the Car-Parrinello molecular dynamics (CPMD) simulations, which show distinctive signatures different from ordinary hydrogen-bond peaks. The O-H-O stretching peaks in the range of 1800-2700 cm(-1) become insignificant above around 150 K and are almost washed out at about 300 K.


Journal of Chemical Physics | 2005

The spectroscopic signature of the “all-surface” to “internally solvated” structural transition in water clusters in the n=17–21 size regime

Anita Lagutschenkov; George S. Fanourgakis; Gereon Niedner-Schatteburg; Sotiris S. Xantheas


Physical Chemistry Chemical Physics | 2011

Infrared spectra of protonated neurotransmitters: dopamine

Anita Lagutschenkov; Judith Langer; Giel Berden; Jos Oomens; Otto Dopfer


Journal of Physical Chemistry A | 2010

Structure and infrared spectrum of the Ag(+)-phenol ionic complex.

Anita Lagutschenkov; Rajeev K. Sinha; Philippe Maitre; Otto Dopfer


Journal of Chemical Physics | 2007

Infrared spectrum of NH4+(H2O): Evidence for mode specific fragmentation

Tobias Pankewitz; Anita Lagutschenkov; Gereon Niedner-Schatteburg; Sotiris S. Xantheas; Yuan-Tseh Lee


Journal of Physical Chemistry A | 2004

Reductive Nitrile Coupling in Niobium−Acetonitrile Complexes Probed by Free Electron Laser IR Multiphoton Dissociation Spectroscopy

Björn M. Reinhard; Anita Lagutschenkov; Joël Lemaire; Philippe Maitre; Pierre Boissel; Gereon Niedner-Schatteburg


Organometallics | 2010

Reactive Sigma-Aryliron Complexes or Iron-Promoted Coupling of Two Phenyl Anions to One Bis(cyclohexadienylidene) Ligand: Synthesis, Structure, Mass Spectrometry, and DFT Calculations

Mark W. Wallasch; Daniel Weismann; Christoph Riehn; Stefan Ambrus; Gotthelf Wolmershäuser; Anita Lagutschenkov; Gereon Niedner-Schatteburg; Helmut Sitzmann

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Otto Dopfer

Technical University of Berlin

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Judith Langer

Technical University of Berlin

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Gereon Niedner-Schatteburg

Kaiserslautern University of Technology

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Giel Berden

Radboud University Nijmegen

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Jos Oomens

Radboud University Nijmegen

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Alexander Patzer

Technical University of Berlin

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Shamik Chakraborty

Technical University of Berlin

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Sotiris S. Xantheas

Pacific Northwest National Laboratory

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André Fielicke

Technical University of Berlin

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