Topics in Current Chemistry (2018) 376:35
1 3
17. Bardeen CJ, Wang Q, Shank CV (1998) Femtosecond chirped pulse excitation of vibrational
wave packets in LD690 and bacteriorhodopsin. J Phys Chem A 102(17):2759–2766. https ://doi.
org/10.1021/jp980 346k
18. Malkmus S, Dürr R, Sobotta C, Pulvermacher H, Zinth W, Braun M (2005) Chirp dependence of
wave packet motion in oxazine 1. J Phys Chem A 109(46):10488–10492. https ://doi.org/10.1021/
jp054 462g
19. Kahan A, Nahmias O, Friedman N, Sheves M, Ruhman S (2007) Following photoinduced dynamics in bacteriorhodopsin with 7-fs impulsive vibrational spectroscopy. J Am Chem Soc 129(3):537–
546. https ://doi.org/10.1021/ja064 910d
20. Kraack JP, Motzkus M, Buckup T (2011) Selective nonlinear response preparation using femtosecond spectrally resolved four-wave-mixing. J Chem Phys 135(22):224505
21. Wand A, Kallush S, Shoshanim O, Bismuth O, Kosloff R, Ruhman S (2010) Chirp effects on impulsive vibrational spectroscopy: a multimode perspective. Phys Chem Chem Phys 12(9):2149–2163
22. Chesnoy J, Mokhtari A (1988) Resonant impulsive-stimulated Raman scattering on malachite
green. Phys Rev A 38(7):3566–3576
23. Pollard WT, Dexheimer SL, Wang Q, Peteanu LA, Shank CV, Mathies RA (1992) Theory of
dynamic absorption spectroscopy of nonstationary states. 4. Application to 12-fs resonant impulsive Raman spectroscopy of bacteriorhodopsin. J Phys Chem 96(15):6147–6158. https ://doi.
org/10.1021/j1001 94a01 3
24. Ruhman S, Joly AG, Nelson KA (1988) Coherent molecular vibrational motion observed in the
time domain through impulsive stimulated Raman scattering. IEEE J Quantum Electron 24(2):460–
469. https ://doi.org/10.1109/3.146
25. Mukamel S (1999) Principles of nonlinear optical spectroscopy, vol 6. Oxford University Press on
Demand, Oxford
26. Pollard WT, Lee SY, Mathies RA (1990) Wave packet theory of dynamic absorption spectra in femtosecond pump–probe experiments. J Chem Phys 92(7):4012–4029. https ://doi.
org/10.1063/1.45781 5
27. Johnson AE, Myers AB (1996) A comparison of time- and frequency-domain resonance Raman
spectroscopy in triiodide. J Chem Phys 104(7):2497–2507. https ://doi.org/10.1063/1.47099 8
28. Liebel M, Schnedermann C, Wende T, Kukura P (2015) Principles and applications of broadband
impulsive vibrational spectroscopy. J Phys Chem A 119(36):9506–9517. https ://doi.org/10.1021/
acs.jpca.5b059 48
29. Tanimura Y, Mukamel S (1993) Temperature-dependence and non-condon effects in pump-probe
spectroscopy in the condensed-phase. J Opt Soc Am B 10(12):2263–2268. https ://doi.org/10.1364/
josab .10.00226 3
30. Brazard J, Bizimana LA, Gellen T, Carbery WP, Turner DB (2016) Experimental detection of
branching at a conical intersection in a highly fluorescent molecule. J Phys Chem Lett 7(1):14–19.
https ://doi.org/10.1021/acs.jpcle tt.5b024 76
31. Hamm P, Zanni MT (2011) Concepts and methods of 2d infrared spectroscopy. Cambridge University Press, Cambridge
32. Siebert T, Schmitt M, Gräfe S, Engel V (2006) Ground state vibrational wave-packet and recovery dynamics studied by time-resolved CARS and pump-CARS spectroscopy. J Raman Spectrosc
37(1–3):397–403. https ://doi.org/10.1002/jrs.1441
33. Motzkus M, Pedersen S, Zewail AH (1996) Femtosecond real-time probing of reactions. 19. Nonlinear (DFWM) techniques for probing transition states of uni- and bimolecular reactions. J Phys
Chem 100(14):5620–5633. https ://doi.org/10.1021/jp960 265t
34. Dobryakov AL, Quick M, Ioffe IN, Granovsky AA, Ernsting NP, Kovalenko SA (2014) Excitedstate Raman spectroscopy with and without actinic excitation: S1 Raman spectra of trans-azobenzene. J Chem Phys 140(18):184310. https ://doi.org/10.1063/1.48748 54
35. Sun Z, Lu J, Zhang DH, Lee S-Y (2008) Quantum theory of (femtosecond) time-resolved stimulated Raman scattering. J Chem Phys 128(14):144114. https ://doi.org/10.1063/1.28885 51
36. Payne SA, Hochstrasser RM (1986) Picosecond coherent anti-stokes Raman scattering from the
excited states of stilbene and benzophenone. J Phys Chem 90(10):2068–2074
37. Takeuchi S, Ruhman S, Tsuneda T, Chiba M, Taketsugu T, Tahara T (2008) Spectroscopic tracking
of structural evolution in ultrafast stilbene photoisomerization. Science 322(5904):1073–1077
38. Motzkus M, Pedersen S, Zewail AH (1996) Femtosecond real-time probing of reactions.19. Nonlinear (DFWM) techniques for probing transition states of uni- and bimolecular reactions. J Phys
Chem Us 100(14):5620–5633
238
Reprinted from the journal
1 3
17. Bardeen CJ, Wang Q, Shank CV (1998) Femtosecond chirped pulse excitation of vibrational
wave packets in LD690 and bacteriorhodopsin. J Phys Chem A 102(17):2759–2766. https ://doi.
org/10.1021/jp980 346k
18. Malkmus S, Dürr R, Sobotta C, Pulvermacher H, Zinth W, Braun M (2005) Chirp dependence of
wave packet motion in oxazine 1. J Phys Chem A 109(46):10488–10492. https ://doi.org/10.1021/
jp054 462g
19. Kahan A, Nahmias O, Friedman N, Sheves M, Ruhman S (2007) Following photoinduced dynamics in bacteriorhodopsin with 7-fs impulsive vibrational spectroscopy. J Am Chem Soc 129(3):537–
546. https ://doi.org/10.1021/ja064 910d
20. Kraack JP, Motzkus M, Buckup T (2011) Selective nonlinear response preparation using femtosecond spectrally resolved four-wave-mixing. J Chem Phys 135(22):224505
21. Wand A, Kallush S, Shoshanim O, Bismuth O, Kosloff R, Ruhman S (2010) Chirp effects on impulsive vibrational spectroscopy: a multimode perspective. Phys Chem Chem Phys 12(9):2149–2163
22. Chesnoy J, Mokhtari A (1988) Resonant impulsive-stimulated Raman scattering on malachite
green. Phys Rev A 38(7):3566–3576
23. Pollard WT, Dexheimer SL, Wang Q, Peteanu LA, Shank CV, Mathies RA (1992) Theory of
dynamic absorption spectroscopy of nonstationary states. 4. Application to 12-fs resonant impulsive Raman spectroscopy of bacteriorhodopsin. J Phys Chem 96(15):6147–6158. https ://doi.
org/10.1021/j1001 94a01 3
24. Ruhman S, Joly AG, Nelson KA (1988) Coherent molecular vibrational motion observed in the
time domain through impulsive stimulated Raman scattering. IEEE J Quantum Electron 24(2):460–
469. https ://doi.org/10.1109/3.146
25. Mukamel S (1999) Principles of nonlinear optical spectroscopy, vol 6. Oxford University Press on
Demand, Oxford
26. Pollard WT, Lee SY, Mathies RA (1990) Wave packet theory of dynamic absorption spectra in femtosecond pump–probe experiments. J Chem Phys 92(7):4012–4029. https ://doi.
org/10.1063/1.45781 5
27. Johnson AE, Myers AB (1996) A comparison of time- and frequency-domain resonance Raman
spectroscopy in triiodide. J Chem Phys 104(7):2497–2507. https ://doi.org/10.1063/1.47099 8
28. Liebel M, Schnedermann C, Wende T, Kukura P (2015) Principles and applications of broadband
impulsive vibrational spectroscopy. J Phys Chem A 119(36):9506–9517. https ://doi.org/10.1021/
acs.jpca.5b059 48
29. Tanimura Y, Mukamel S (1993) Temperature-dependence and non-condon effects in pump-probe
spectroscopy in the condensed-phase. J Opt Soc Am B 10(12):2263–2268. https ://doi.org/10.1364/
josab .10.00226 3
30. Brazard J, Bizimana LA, Gellen T, Carbery WP, Turner DB (2016) Experimental detection of
branching at a conical intersection in a highly fluorescent molecule. J Phys Chem Lett 7(1):14–19.
https ://doi.org/10.1021/acs.jpcle tt.5b024 76
31. Hamm P, Zanni MT (2011) Concepts and methods of 2d infrared spectroscopy. Cambridge University Press, Cambridge
32. Siebert T, Schmitt M, Gräfe S, Engel V (2006) Ground state vibrational wave-packet and recovery dynamics studied by time-resolved CARS and pump-CARS spectroscopy. J Raman Spectrosc
37(1–3):397–403. https ://doi.org/10.1002/jrs.1441
33. Motzkus M, Pedersen S, Zewail AH (1996) Femtosecond real-time probing of reactions. 19. Nonlinear (DFWM) techniques for probing transition states of uni- and bimolecular reactions. J Phys
Chem 100(14):5620–5633. https ://doi.org/10.1021/jp960 265t
34. Dobryakov AL, Quick M, Ioffe IN, Granovsky AA, Ernsting NP, Kovalenko SA (2014) Excitedstate Raman spectroscopy with and without actinic excitation: S1 Raman spectra of trans-azobenzene. J Chem Phys 140(18):184310. https ://doi.org/10.1063/1.48748 54
35. Sun Z, Lu J, Zhang DH, Lee S-Y (2008) Quantum theory of (femtosecond) time-resolved stimulated Raman scattering. J Chem Phys 128(14):144114. https ://doi.org/10.1063/1.28885 51
36. Payne SA, Hochstrasser RM (1986) Picosecond coherent anti-stokes Raman scattering from the
excited states of stilbene and benzophenone. J Phys Chem 90(10):2068–2074
37. Takeuchi S, Ruhman S, Tsuneda T, Chiba M, Taketsugu T, Tahara T (2008) Spectroscopic tracking
of structural evolution in ultrafast stilbene photoisomerization. Science 322(5904):1073–1077
38. Motzkus M, Pedersen S, Zewail AH (1996) Femtosecond real-time probing of reactions.19. Nonlinear (DFWM) techniques for probing transition states of uni- and bimolecular reactions. J Phys
Chem Us 100(14):5620–5633
238
Reprinted from the journal
