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Featured researches published by M. Ruszczak.


IEEE Transactions on Plasma Science | 2009

Restoration of the Pure Dynamic Optogalvanic Signals in Ne Hollow Cathode Discharge

R. Djulgerova; V. Mihailov; Michail D. Todorov; J. Koperski; M. Ruszczak; T. Dohnalik; Zoran Lju. Petrovic

Dynamic optogalvanic signals (OGSs) from optical transitions corresponding to the Ne I 533.08-nm and Ne I 540.05-nm spectral lines are registered in Ne/Ca and Ne/Mn hollow cathode discharges. A direct deconvolution procedure has been developed for restoring the true OGS from the one registered.


Proceedings of SPIE, the International Society for Optical Engineering | 2005

Properties of the binding in 12-group homonuclear dimers from excitation and fluorescence spectra

J. Koperski; E. Czuchaj; M. Lukomski; M. Ruszczak

Excitation and fluorescence ultraviolet spectra of 12-group homonuclear metal dimers (i.e., M2, where M=Zn, Cd and Hg) recorded at several molecular transitions provide information on interatomic potentials of the ground and low-lying excited electronic energy states of the dimers. In experiments the molecules were produced in a supersonic beam and were excited in a vacuum chamber using a dye-laser beam. Well-resolved vibrational structures in excitation spectra isotopic and rotational structures of the vibrational components as well as Condon internal diffraction patterns in the fluorescence bands were recorded and analyzed. Analyses of the excitation spectra lead to the analytical representations of the ground- and excited-state interatomic potentials. Analyses of the fluorescence profiles yielded information on the repulsive parts of the ground-state interatomic potentials. In the case of Cd2 and Hg2 the results confirm a relatively soft repulsion between two metal atoms in the short-range region of internuclear separation and make allowance for a theoretically predicted covalent admixture to the ground-state van der Waals binding. The hypothesis needs further corroboration. The determined interatomic potentials of mercury dimers were used in a proposed mechanism of vibrational cooling in translationally cold Hg2.


Chemical Physics | 2006

The 30u+(43P1)andX0g+-state potentials of Zn2 obtained from excitation spectrum recorded at the 30u+←X10g+ transition

M. Strojecki; M. Ruszczak; M. Krośnicki; M. Łukomski; J. Koperski


Chemical Physics | 2007

Is Cd2 truly a van der Waals molecule? Analysis of rotational profiles recorded at the A0u+, B1u←X0g+ transitions

M. Strojecki; M. Ruszczak; M. Łukomski; J. Koperski


Chemical Physics Letters | 2007

Rotational structure of the υ′=45←υ″=0 band of the 10u+(51P1)←X10g+ transition in 228Cd2: Direct determination of the ground- and excited-state bond lengths

M. Łukomski; M. Strojecki; M. Ruszczak; J. Koperski


Journal of Physics B | 2008

Potential energy curves for the B11u state and short-range part of the X10+g state of Cd2 determined from excitation and dispersed fluorescence spectra recorded using the B11u ? X10+g transition

M. Ruszczak; M. Strojecki; M. Łukomski; J. Koperski


Journal of Molecular Spectroscopy | 2007

Spectroscopy of the 11u(51P1) and 10u+(51P1) singlet electronic states of cadmium dimer: Bond lengths and verification of ab initio potentials

J. Koperski; M. Ruszczak; M. Strojecki; M. Łukomski


Chemical Physics Letters | 2005

Short-range repulsion in the D10+(1Σ+)-state potential of the CdRG (RG = Ar, Kr) molecules determined from a direct continuum ← bound excitation detected at the D10+ ← X10+(1Σ+) transition

M. Ruszczak; M. Strojecki; J. Koperski


Chemical Physics Letters | 2007

Erratum to ‘Rotational structure of the v′ = 45 ← v″ = 0 band of the 10u+(51P1)←X10g+ transition in 228Cd2: Direct determination of the ground- and excited-state bond lengths’ [Chem. Phys. Lett. 434 (2007) 171]

M. Łukomski; M. Strojecki; M. Ruszczak; J. Koperski


Archive | 2008

Dynamic optogalvanic krypton and neon spectra for 428-451 nm range in hollow cathode discharge

R. Djulgerova; V. Mihailov; J. Koperski; M. Ruszczak; T. Dohnalik; Z. Lj. Petrović

Collaboration


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J. Koperski

Jagiellonian University

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M. Strojecki

Jagiellonian University

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M. Łukomski

Jagiellonian University

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T. Dohnalik

Jagiellonian University

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R. Djulgerova

Bulgarian Academy of Sciences

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V. Mihailov

Bulgarian Academy of Sciences

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E. Czuchaj

Jagiellonian University

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M. Lukomski

Jagiellonian University

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Michail D. Todorov

Information Technology University

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