V. Andrianarijaona
Max Planck Society
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Featured researches published by V. Andrianarijaona.
Physical Review A | 2005
H. B. Pedersen; Henrik Buhr; S. Altevogt; V. Andrianarijaona; Holger Kreckel; L. Lammich; N. de Ruette; E.M. Staicu-Casagrande; D. Schwalm; D. Strasser; Xavier Urbain; A. Wolf
The dissociative recombination (DR) of He-3 He-4(+) has been investigated at the heavy-ion Test Storage Ring (TSR) in Heidelberg by observing neutral products from electron-ion collisions in a merged beams configuration at relative energies from near-zero (thermal electron energy about 10 meV) up to 40 eV. After storage and electron cooling for 35 s, an effective DR rate coefficient at near-zero energy of 3 x 10(-9) cm(3)s(-1) is found. The temporal evolution of the neutral product rates and fragment imaging spectra reveals that the populations of vibrational levels in the stored ion beam are nonthermal with fractions of similar to 0.1-1% in excited levels up to at least v=4, having a significant effect on the observed DR signals. With a pump-probe-type technique using DR fragment imaging while switching the properties of the electron beam, the vibrational excitation of the ions is found to originate mostly from ion collisions with the residual gas. Also, the temporal evolution of the DR signals suggests that a strong electron induced rotational cooling occurs in the vibrational ground state, reaching a rotational temperature near or below 300 K. From the absolute rate coefficient and the shape of the fragment imaging spectrum observed under stationary conditions, the DR rate coefficient from the vibrational ground state is determined; converted to a thermal electron gas at 300 K it amounts to (3.3 +/- 0.9) x 10(-10) cm(3)s(-1). The corresponding branching ratios from v=0 to the atomic final states are found to be (3.7 +/- 1.2) % for 1s2s S-3, (37.4 +/- 4.0) % for 1s2s S-1, (58.6 +/- 5.2) % for 1s2p P-3, and (2.9 +/- 3.0) % for 1s2p P-1. A DR rate coefficient in the range of 2 x 10(-7) cm(3)s(-1) or above is inferred for vibrational levels v=3 and higher. As a function of the collision energy, the measured DR rate coefficient displays a structure around 0.2 eV. At higher energies, it has one smooth peak around 7.3 eV and a highly structured appearance at 15-40 eV. The small size of the observed effective DR rate coefficient at near-zero energy indicates that the electron induced rotational cooling is due to inelastic electron-ion collisions and not due to selective depletion of rotational levels by DR.
Physical Review A | 2011
F O Waffeu Tamo; Hendrik Buhr; O. Motapon; S. Altevogt; V. Andrianarijaona; M. Grieser; L. Lammich; M. Lestinsky; Michael Motsch; I. Nevo; Steffen Novotny; Dmitry A. Orlov; H. B. Pedersen; D. Schwalm; Frank Sprenger; Xavier Urbain; Udo Weigel; A. Wolf; I. F. Schneider
The collision-energy resolved rate coefficient for dissociative recombination of HD(+) ions in the vibrational ground state is measured using the photocathode electron target at the heavy-ion storage ring TSR. Rydberg resonances associated with rovibrational excitation of the HD(+) core are scanned as a function of the electron collision energy with an instrumental broadening below 1 meV in the low-energy limit. The measurement is compared to calculations using multichannel quantum defect theory, accounting for rotational structure and interactions and considering the six lowest rotational energy levels as initial ionic states. Using thermal-equilibrium-level populations at 300 K to approximate the experimental conditions, close correspondence between calculated and measured structures is found up to the first vibrational excitation threshold of the cations near 0.24 eV. Detailed assignments, including naturally broadened and overlapping Rydberg resonances, are performed for all structures up to 0.024 eV. Resonances from purely rotational excitation of the ion core are found to have similar strengths as those involving vibrational excitation. A dominant low-energy resonance is assigned to contributions from excited rotational states only. The results indicate strong modifications in the energy dependence of the dissociative recombination rate coefficient through the rotational excitation of the parent ions, and underline the need for studies with rotationally cold species to obtain results reflecting low-temperature ionized media.
SIXTH INTERNATIONAL CONFERENCE ON DISSOCIATIVE RECOMBINATION: THEORY, EXPERIMENTS AND APPLICATIONS | 2005
L. Lammich; D. Strasser; Holger Kreckel; S. Altevogt; V. Andrianarijaona; Henrik Buhr; M. Lange; H. B. Pedersen; D. Schwalm; A. Wolf
In studies of the rate coefficient of the dissociative recombination of H3+ and its isotopomers, the rovibrational excitation of the molecular ions was found to play an important role, in particular when employing the technique of heavy-ion storage rings. The dependence of the DR rate on rotational excitation was investigated in recent experiments at the Test Storage Ring TSR in Heidelberg through time-resolved measurements on D2H+ and H3+ over long storage times. For both molecules, an influence of rotational excitation on the DR rate was observed. The level of excitation in turn was found to be dominated by radiative coupling to the surrounding 300 K background for D2H+. In the case of H3+, a strong influence of electron collisions on the excitation level was found, whereas an additional influence of collisions with residual gas in the storage ring cannot be excluded.
Seventh international conference on Dissociative Recombination: theory, experiments and applications (DR2007) | 2009
Henrik Buhr; H. B. Pedersen; S. Altevogt; V. Andrianarijaona; Holger Kreckel; L. Lammich; Steffen Novotny; D. Strasser; J. Hoffmann; M. Lange; M. Lestinsky; Mario B. Mendes; Michael Motsch; Oldrich Novotný; D. Schwalm; Xavier Urbain; A. Wolf
The dissociative recombination (DR) of 4He2+ has been investigated at the heavy-ion storage ring TSR in Heidelberg. Rate coefficients were measured up to collision energies of 40 eV. Vibrational level populations were monitored using the Coulomb explosion imaging technique showing relaxation to the v = 0 level (>95%) through collisions with cold electrons within 50s. Low-energy DR rate coefficients are derived for v = 0, 1 and ≥2 which show a strong v-dependence. A low-energy super-elastic collision (SEC) rate coefficient of αv = 1→0SEC (Ed = 0)≈1.8×10−7cm3s−1 was found.
SIXTH INTERNATIONAL CONFERENCE ON DISSOCIATIVE RECOMBINATION: THEORY, EXPERIMENTS AND APPLICATIONS | 2005
H. B. Pedersen; Henrik Buhr; S. Altevogt; V. Andrianarijaona; Holger Kreckel; L. Lammich; N. de Ruette; E.M. Staicu-Casagrande; D. Schwalm; D. Strasser; Xavier Urbain; A. Wolf
The dissociative recombination (DR) of the helium dimer 3He4He+ has been investigated at the heavy-ion Test Storage Ring (TSR) in Heidelberg at relative energies up to 40 eV. The vibrational level population in the stored ion beam was shown to be non-thermal with a fraction of 0.1–1% in higher vibrational states, resulting mainly from vibrational excitation in collisions with the residual gas species. The temporal evolution of the DR rate during storage showed evidence for an electron induced rotational de-excitation from the vibrational ground state. After haracterizing the evolution of the rovibrational population of the stored ions, the zero energy DR rate coefficient was extracted from the measurement to be αv=0 DR (0) = (7.3±2.1)×10−10 cm3/s, and the DR reaction from the vibrational ground state was seen to proceed mainly to the 1s2s 1S and 1s2p3P atomic limits. For v ≥ 3, the DR reaction has a rate coefficient ≥ 2×10−7 cm3/s and leads primarily to atomic fragments with n ≥ 3. The energy dependent rate coefficient displays several prominent structures.
Physical Review Letters | 2005
Holger Kreckel; Michael Motsch; J. Mikosch; J. Glosı́k; R. Plašil; S. Altevogt; V. Andrianarijaona; Henrik Buhr; Jens Hoffmann; L. Lammich; M. Lestinsky; I. Nevo; Steffen Novotny; D. A. Orlov; H. B. Pedersen; Frank Sprenger; A. S. Terekhov; J. Toker; Dieter Gerlich; D. Schwalm; A. Wolf
Physical Review Letters | 2003
L. Lammich; D. Strasser; Holger Kreckel; M. Lange; H. B. Pedersen; S. Altevogt; V. Andrianarijaona; Henrik Buhr; O. Heber; P. Witte; D. Schwalm; A. Wolf
Physical Review A | 2007
I. Nevo; Steffen Novotny; Henrik Buhr; V. Andrianarijaona; S. Altevogt; O. Heber; J. Hoffmann; Holger Kreckel; L. Lammich; M. Lestinsky; H. B. Pedersen; D. Schwalm; A. Wolf
Physica Scripta | 2004
A. Wolf; L. Lammich; D. Strasser; S. Altevogt; V. Andrianarijaona; Henrik Buhr; O. Heber; Holger Kreckel; H. B. Pedersen; D. Schwalm
Journal of Physics: Conference Series | 2009
Henrik Buhr; H. B. Pedersen; S. Altevogt; V. Andrianarijaona; Holger Kreckel; L. Lammich; Steffen Novotny; D. Strasser; J. Hoffmann; M. Lange; M. Lestinsky; Mario B. Mendes; Michael Motsch; Oldrich Novotny; D. Schwalm; Xavier Urbain; D. Zajfman; Andreas Wolf