4 Light-Dressed Spectroscopy of Molecules
99
References
1. F. Merkt, M. Quack, Molecular quantum mechanics and molecular spectra, molecular symmetry, and interaction of matter with radiation, in Handbook of High-Resolution Spectroscopy,
ed. by M. Quack, F. Merkt (Wiley, Chichester, 2011)
2. T. Udem, R. Holzwarth, T.W. Hänsch, Optical frequency metrology. Nature 416, 233–237
(2002)
3. S.A. Diddams, The evolving optical frequency comb. J. Opt. Soc. Am. B 27, B51 (2010)
4. J.L. Hall, Nobel lecture: defining and measuring optical frequencies. Rev. Mod. Phys. 78,
1279–1295 (2006)
5. T.W. Hänsch, Nobel lecture: passion for precision. Rev. Mod. Phys. 78, 1297–1309 (2006)
6. T. Brabec, F. Krausz, Intense few-cycle laser fields: frontiers of nonlinear optics. Rev. Mod.
Phys. 72, 545–591 (2000)
7. F. Krausz, M. Ivanov, Attosecond physics. Rev. Mod. Phys. 81, 163–234 (2009)
8. A. Palacios, F. Martín, The quantum chemistry of attosecond molecular science. WIREs Comp.
Mol. Sci. 20, e1430 (2020)
9. A.H. Zewail, Femtochemistry: atomic-scale dynamics of the chemical bond. J. Phys. Chem. A
104, 5660–5694 (2000)
10. M. Dantus, Coherent nonlinear spectroscopy: from femtosecond dynamics to control. Annu.
Rev. Phys. Chem. 52, 639–679 (2001)
11. S. Mukamel, Multidimensional femtosecond correlation spectroscopies of electronic and vibrational excitations. Annu. Rev. Phys. Chem. 51, 691–729 (2000)
12. T. Ando, A. Iwasaki, K. Yamanouchi, Strong-field fourier transform vibrational spectroscopy
of D 2
+ using few-cycle near-infrared laser pulses. Phys. Rev. Lett. 120, 263002 (2018)
13. C. Cohen-Tannoudji, J. Dupont-Roc, G. Grynberg, Atom-Photon Interactions: Basic Processes
and Applications (Wiley-VCH Verlag GmbH and Co, KGaA, 2004)
14. J.H. Shirley, Solution of the Schrödinger equation with a Hamiltonian periodic in time. Phys.
Rev. 138, B979–B987 (1965)
15. C. Wunderlich, E. Kobler, H. Figger, T.W. Hänsch, Light-induced molecular potentials. Phys.
Rev. Lett. 78, 2333–2336 (1997)
16. B.M. Garraway, K.-A. Suominen, Adiabatic passage by light-induced potentials in molecules.
Phys. Rev. Lett. 80, 932–935 (1998)
17. Y. Sato, H. Kono, S. Koseki, Y. Fujimura, Description of molecular dynamics in intense laser
fields by the time-dependent adiabatic state approach: application to simultaneous two-bond
dissociation of CO 2 and its control. J. Am. Chem. Soc. 125(26), 8019–8031 (2003)
18. M.E. Corrales, J. González-Vázquez, G. Balerdi, I.R. Solá, R. de Nalda, L. Bañares, Control of
ultrafast molecular photodissociation by laser-field-induced potentials. Nat. Chem. 6, 785–790
(2014)
19. F. Kelkensberg, C. Lefebvre, W. Siu, O. Ghafur, T.T. Nguyen-Dang, O. Atabek, A. Keller, V.
Serov, P. Johnsson, M. Swoboda, T. Remetter, A. L’Huillier, S. Zherebtsov, G. Sansone, E.
Benedetti, F. Ferrari, M. Nisoli, F. Lépine, M.F. Kling, M.J.J. Vrakking, Molecular dissociative ionization and wave-packet dynamics studied using two-color XUV and IR pump-probe
spectroscopy. Phys. Rev. Lett. 103, 123005 (2009)
20. O. Atabek, R. Lefebvre, T. Nguyen-Dang, Unstable states in laser assisted and controlled
molecular processes, in Unstable States in the Continuous Spectra, Part I: Analysis, Concepts,
Methods, and Results, pp. 51–104, (Elsevier, Amsterdam, 2010)
21. E.E. Aubanel, J.-M. Gauthier, A.D. Bandrauk, Molecular stabilization and angular distribution
in photodissociation of H 2
+ in intense laser fields. Phys. Rev. A 48, 2145–2152 (1993)
22. A.D. Bandrauk, M.L. Sink, Photodissociation in intense laser fields: predissociation analogy.
J. Chem. Phys. 74, 1110–1117 (1981)
23. P.H. Bucksbaum, A. Zavriyev, H.G. Muller, D.W. Schumacher, Softening of the H 2
+ molecular
bond in intense laser fields. Phys. Rev. Lett. 64, 1883–1886 (1990)
24. S.H. Autler, C.H. Townes, Stark effect in rapidly varying fields. Phys. Rev. 100, 703–722 (1955)
99
References
1. F. Merkt, M. Quack, Molecular quantum mechanics and molecular spectra, molecular symmetry, and interaction of matter with radiation, in Handbook of High-Resolution Spectroscopy,
ed. by M. Quack, F. Merkt (Wiley, Chichester, 2011)
2. T. Udem, R. Holzwarth, T.W. Hänsch, Optical frequency metrology. Nature 416, 233–237
(2002)
3. S.A. Diddams, The evolving optical frequency comb. J. Opt. Soc. Am. B 27, B51 (2010)
4. J.L. Hall, Nobel lecture: defining and measuring optical frequencies. Rev. Mod. Phys. 78,
1279–1295 (2006)
5. T.W. Hänsch, Nobel lecture: passion for precision. Rev. Mod. Phys. 78, 1297–1309 (2006)
6. T. Brabec, F. Krausz, Intense few-cycle laser fields: frontiers of nonlinear optics. Rev. Mod.
Phys. 72, 545–591 (2000)
7. F. Krausz, M. Ivanov, Attosecond physics. Rev. Mod. Phys. 81, 163–234 (2009)
8. A. Palacios, F. Martín, The quantum chemistry of attosecond molecular science. WIREs Comp.
Mol. Sci. 20, e1430 (2020)
9. A.H. Zewail, Femtochemistry: atomic-scale dynamics of the chemical bond. J. Phys. Chem. A
104, 5660–5694 (2000)
10. M. Dantus, Coherent nonlinear spectroscopy: from femtosecond dynamics to control. Annu.
Rev. Phys. Chem. 52, 639–679 (2001)
11. S. Mukamel, Multidimensional femtosecond correlation spectroscopies of electronic and vibrational excitations. Annu. Rev. Phys. Chem. 51, 691–729 (2000)
12. T. Ando, A. Iwasaki, K. Yamanouchi, Strong-field fourier transform vibrational spectroscopy
of D 2
+ using few-cycle near-infrared laser pulses. Phys. Rev. Lett. 120, 263002 (2018)
13. C. Cohen-Tannoudji, J. Dupont-Roc, G. Grynberg, Atom-Photon Interactions: Basic Processes
and Applications (Wiley-VCH Verlag GmbH and Co, KGaA, 2004)
14. J.H. Shirley, Solution of the Schrödinger equation with a Hamiltonian periodic in time. Phys.
Rev. 138, B979–B987 (1965)
15. C. Wunderlich, E. Kobler, H. Figger, T.W. Hänsch, Light-induced molecular potentials. Phys.
Rev. Lett. 78, 2333–2336 (1997)
16. B.M. Garraway, K.-A. Suominen, Adiabatic passage by light-induced potentials in molecules.
Phys. Rev. Lett. 80, 932–935 (1998)
17. Y. Sato, H. Kono, S. Koseki, Y. Fujimura, Description of molecular dynamics in intense laser
fields by the time-dependent adiabatic state approach: application to simultaneous two-bond
dissociation of CO 2 and its control. J. Am. Chem. Soc. 125(26), 8019–8031 (2003)
18. M.E. Corrales, J. González-Vázquez, G. Balerdi, I.R. Solá, R. de Nalda, L. Bañares, Control of
ultrafast molecular photodissociation by laser-field-induced potentials. Nat. Chem. 6, 785–790
(2014)
19. F. Kelkensberg, C. Lefebvre, W. Siu, O. Ghafur, T.T. Nguyen-Dang, O. Atabek, A. Keller, V.
Serov, P. Johnsson, M. Swoboda, T. Remetter, A. L’Huillier, S. Zherebtsov, G. Sansone, E.
Benedetti, F. Ferrari, M. Nisoli, F. Lépine, M.F. Kling, M.J.J. Vrakking, Molecular dissociative ionization and wave-packet dynamics studied using two-color XUV and IR pump-probe
spectroscopy. Phys. Rev. Lett. 103, 123005 (2009)
20. O. Atabek, R. Lefebvre, T. Nguyen-Dang, Unstable states in laser assisted and controlled
molecular processes, in Unstable States in the Continuous Spectra, Part I: Analysis, Concepts,
Methods, and Results, pp. 51–104, (Elsevier, Amsterdam, 2010)
21. E.E. Aubanel, J.-M. Gauthier, A.D. Bandrauk, Molecular stabilization and angular distribution
in photodissociation of H 2
+ in intense laser fields. Phys. Rev. A 48, 2145–2152 (1993)
22. A.D. Bandrauk, M.L. Sink, Photodissociation in intense laser fields: predissociation analogy.
J. Chem. Phys. 74, 1110–1117 (1981)
23. P.H. Bucksbaum, A. Zavriyev, H.G. Muller, D.W. Schumacher, Softening of the H 2
+ molecular
bond in intense laser fields. Phys. Rev. Lett. 64, 1883–1886 (1990)
24. S.H. Autler, C.H. Townes, Stark effect in rapidly varying fields. Phys. Rev. 100, 703–722 (1955)
