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About 90 research and educational papers. Selected publications:
- V. N. Ostrovsky, D. A. Telnov. Multiphoton
detachment by elliptically polarized wave in static electric field.
Laser
Physics, 1993, v.3, p.495.
- D. A. Telnov, J. Wang, S. I. Chu. Two-color phase
control of high-order harmonic generation in intense laser fields.
Phys. Rev.
A, 1995, v.52, p.3988.
- D. A. Telnov, S. I. Chu. Floquet formulation
of time-dependent density functional theory.
Chem. Phys. Lett., 1997, v.264, p.466.
- D. A. Telnov, S. I. Chu. Multiphoton
detachment of H- near the one-photon threshold: Exterior-complex-scaling
- generalized pseudospectral method for complex quasienergy resonances.
Phys.
Rev. A, 1999, v.59, p.2864.
- D. A. Telnov, S. I. Chu. Multiphoton above-threshold detachment of Li-:
Exterior-complex-scaling - generalized-pseudospectral method for calculations of
complex-quasienergy resonances in Floquet formulation of time-dependent density-functional
theory.
Phys. Rev. A, 2002, v.66, 043417.
- S. I. Chu, D. A. Telnov.
Beyond the Floquet theorem: generalized Floquet formalisms and quasienergy methods
for atomic and molecular multiphoton processes in intense laser fields.
Phys. Rep., 2004, v.390, p.1.
- D. A. Telnov, S. I. Chu. Ab initio study
of high-order harmonic generation of H2+ in intense laser fields: Time-dependent
non-Hermitian Floquet approach.
Phys. Rev. A, 2005, v.71, 013408.
- D. A. Telnov, S. I. Chu. Ab initio study of the orientation effects in
multiphoton ionization and high-order harmonic generation from the ground and excited electronic states of H2+.
Phys. Rev. A, 2007, v.76, 043412.
- D. A. Telnov, S. I. Chu. Effects of electron structure and multi-electron dynamical response
on strong-field multiphoton ionization of diatomic molecules with arbitrary orientation:
An all-electron time-dependent density-functional-theory approach.
Phys. Rev. A, 2009, v.79, 041401(R).
- D. A. Telnov, S. I. Chu. Above-threshold-ionization spectra from the core region of a time-dependent wave packet: An ab initio time-dependent approach.
Phys. Rev. A, 2009, v.79, 043421.
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