28
A. V. Glushkov
118. Glushkov AV, Ivanov LN., Ivanova EP (1986) Radiation decay of atomic states. Generalized
energy approach. In: Autoionization phenomena in atoms. Moscow State Univ., Moscow, p
58
119. Glushkov AV, Ivanov LN (1992) Radiation decay of atomic states: atomic residue polarization
and gauge noninvariant contributions. Phys Lett A 170:33–36
120. Glushkov AV (2012) Advanced relativistic energy approach to radiative decay processes in
multielectron atoms and multicharged ions. In: Nishikawa K, Maruani J, Brandas E, DelgadoBarrio G, Piecuch P (eds) Quantum systems in chemistry and physics: progress in methods
and applications. Series: Progress in Theoretical Chemistry and Physics, vol 26. Springer,
Dordrecht, pp 231–252
121. Glushkov AV (2019) Multiphoton spectroscopy of atoms and nuclei in a laser field: relativistic
energy approach and radiation atomic lines moments method. Adv Quant Chem, vol 78:253–
285 (Elsevier). https://doi.org/10.1016/bs.aiq.2018.06.004
122. Khetselius OY (2019) Optimized relativistic many-body perturbation theory calculation of
wavelengths and oscillator strengths for Li-like multicharged ions. Adv Quant Chem 78:223–
251 (Elsevier). https://doi.org/10.1016/bs.aiq.2018.06.001
123. Ivanov LN, Letokhov VS (1985) Spectroscopy of autoionization resonances in heavy
elements. Com Mod Phys D: Atom Mol Phys 4:169–184
124. Ivanova EP, Grant IP (1998) Oscillator strength anomalies in the neon isoelectronic sequence
with applications to x-ray laser modelling. J Phys B: At Mol Opt Phys 31(13):2871–2883
125. Ivanova EP, Zinoviev NA (1999) Calculation of the vacuum-UV radiation gains in transitions
of Ne-like argon in capillary discharges. Quant Electr 29(6):484–492
126. Ivanova EP, Zinoviev NA (2001) The possibility of X-ray lasers based on the innershell
transitions of Ne-like ions. Phys Lett A 274(5-6):239–246
127. Bekov GI, Vidolova-Angelova E, Ivanov LN, Letokhov VS, Mishin V (1981) Laser
spectroscopy of narrow doubly excited autoionizing states of Ytterbium atoms. JETP
53(3):441–447
128. Vidolova-Angelova E, Ivanov LN, Ivanova EP et al (1986) Relativistic perturbation method
for investigating the radiation decay of highly excited many electron atoms: Tm atom. J Phys
B: At Mol Opt Phys 19:2053–2069
129. Vidolova-Angelova E, Ivanov LN (1991) Autoionizing Rydberg states of thulium. Reorientation decay due to monopole interaction. J Phys B: At Mol Opt Phys 24:4147–4158
130. Ivanov LN, Ivanova EP, Knight L (1993) Energy approach to consistent QED theory for
calculation of electron-collision strengths: Ne-like ions. Phys Rev A 48:4365–4378
131. Glushkov AV, Ivanov LN, Letokhov VS (1991) Nuclear quantum optics. Preprint of Institute
for Spectroscopy of the USSR Academy of Sciences. ISAN, Moscow-Troitsk, AS-4
132. Glushkov AV, Ivanov LN, Letokhov VS (1992) Laser separation of heavy lanthanides and
actinides isotopes: Autoionization resonances and decay in electric field. Preprint of Institute
for Spectroscopy of the USSR Academy of Sciences. ISAN, Moscow-Troitsk, AS N5
133. Glushkov AV, Ivanov LN (1992) A broadening of the thulium atom autoionization resonances
in a weak electric field. Preprint of Institute for Spectroscopy of the USSR Academy of
Sciences. ISAN, Moscow-Troitsk, AS N2
134. Glushkov AV, Ivanov LN (1992) Shift and deformation of radiation atomic lines in the laser
emission field. Multiphoton processes. Preprint of Institute for Spectroscopy of the USSR
Academy of Sciences. ISAN, Moscow-Troitsk, AS N3
135. Glushkov AV, Loboda AV (2007) Calculation of the characteristics of radiative multiphoton
absorption and emission lines when an atom interacts with pulsed laser radiation. J Appl
Spectr 74:305–309 (Springer)
136. Glushkov AV (2008) QED theory of radiation emission and absorption lines for atoms and
ions in a strong laser field. AIP Conf Proc 1058:134–136
137. Khetselius OY, Glushkov AV, Gurskaya M Yu, Kuznetsova AA, Dubrovskaya Yu
V, Serga IN, Vitavetskaya LA (2017) Computational modelling parity nonconservation
and electroweak interaction effects in heavy atomic systems within the nuclear-relativistic
many-body perturbation theory. J Phys.: Conf Ser 905:012029
A. V. Glushkov
118. Glushkov AV, Ivanov LN., Ivanova EP (1986) Radiation decay of atomic states. Generalized
energy approach. In: Autoionization phenomena in atoms. Moscow State Univ., Moscow, p
58
119. Glushkov AV, Ivanov LN (1992) Radiation decay of atomic states: atomic residue polarization
and gauge noninvariant contributions. Phys Lett A 170:33–36
120. Glushkov AV (2012) Advanced relativistic energy approach to radiative decay processes in
multielectron atoms and multicharged ions. In: Nishikawa K, Maruani J, Brandas E, DelgadoBarrio G, Piecuch P (eds) Quantum systems in chemistry and physics: progress in methods
and applications. Series: Progress in Theoretical Chemistry and Physics, vol 26. Springer,
Dordrecht, pp 231–252
121. Glushkov AV (2019) Multiphoton spectroscopy of atoms and nuclei in a laser field: relativistic
energy approach and radiation atomic lines moments method. Adv Quant Chem, vol 78:253–
285 (Elsevier). https://doi.org/10.1016/bs.aiq.2018.06.004
122. Khetselius OY (2019) Optimized relativistic many-body perturbation theory calculation of
wavelengths and oscillator strengths for Li-like multicharged ions. Adv Quant Chem 78:223–
251 (Elsevier). https://doi.org/10.1016/bs.aiq.2018.06.001
123. Ivanov LN, Letokhov VS (1985) Spectroscopy of autoionization resonances in heavy
elements. Com Mod Phys D: Atom Mol Phys 4:169–184
124. Ivanova EP, Grant IP (1998) Oscillator strength anomalies in the neon isoelectronic sequence
with applications to x-ray laser modelling. J Phys B: At Mol Opt Phys 31(13):2871–2883
125. Ivanova EP, Zinoviev NA (1999) Calculation of the vacuum-UV radiation gains in transitions
of Ne-like argon in capillary discharges. Quant Electr 29(6):484–492
126. Ivanova EP, Zinoviev NA (2001) The possibility of X-ray lasers based on the innershell
transitions of Ne-like ions. Phys Lett A 274(5-6):239–246
127. Bekov GI, Vidolova-Angelova E, Ivanov LN, Letokhov VS, Mishin V (1981) Laser
spectroscopy of narrow doubly excited autoionizing states of Ytterbium atoms. JETP
53(3):441–447
128. Vidolova-Angelova E, Ivanov LN, Ivanova EP et al (1986) Relativistic perturbation method
for investigating the radiation decay of highly excited many electron atoms: Tm atom. J Phys
B: At Mol Opt Phys 19:2053–2069
129. Vidolova-Angelova E, Ivanov LN (1991) Autoionizing Rydberg states of thulium. Reorientation decay due to monopole interaction. J Phys B: At Mol Opt Phys 24:4147–4158
130. Ivanov LN, Ivanova EP, Knight L (1993) Energy approach to consistent QED theory for
calculation of electron-collision strengths: Ne-like ions. Phys Rev A 48:4365–4378
131. Glushkov AV, Ivanov LN, Letokhov VS (1991) Nuclear quantum optics. Preprint of Institute
for Spectroscopy of the USSR Academy of Sciences. ISAN, Moscow-Troitsk, AS-4
132. Glushkov AV, Ivanov LN, Letokhov VS (1992) Laser separation of heavy lanthanides and
actinides isotopes: Autoionization resonances and decay in electric field. Preprint of Institute
for Spectroscopy of the USSR Academy of Sciences. ISAN, Moscow-Troitsk, AS N5
133. Glushkov AV, Ivanov LN (1992) A broadening of the thulium atom autoionization resonances
in a weak electric field. Preprint of Institute for Spectroscopy of the USSR Academy of
Sciences. ISAN, Moscow-Troitsk, AS N2
134. Glushkov AV, Ivanov LN (1992) Shift and deformation of radiation atomic lines in the laser
emission field. Multiphoton processes. Preprint of Institute for Spectroscopy of the USSR
Academy of Sciences. ISAN, Moscow-Troitsk, AS N3
135. Glushkov AV, Loboda AV (2007) Calculation of the characteristics of radiative multiphoton
absorption and emission lines when an atom interacts with pulsed laser radiation. J Appl
Spectr 74:305–309 (Springer)
136. Glushkov AV (2008) QED theory of radiation emission and absorption lines for atoms and
ions in a strong laser field. AIP Conf Proc 1058:134–136
137. Khetselius OY, Glushkov AV, Gurskaya M Yu, Kuznetsova AA, Dubrovskaya Yu
V, Serga IN, Vitavetskaya LA (2017) Computational modelling parity nonconservation
and electroweak interaction effects in heavy atomic systems within the nuclear-relativistic
many-body perturbation theory. J Phys.: Conf Ser 905:012029
