Topics in Current Chemistry (2018) 376:28
1 3
35. Consani C, Aubock G, van Mourik F, Chergui M (2013) Ultrafast tryptophan-to-heme electron
transfer in myoglobins revealed by UV 2D spectroscopy. Science 339(6127):1586–1589. https ://
doi.org/10.1126/scien ce.12307 58
36. Tanimura Y, Mukamel S (1993) 2-Dimensional femtosecond vibrational spectroscopy of liquids. J Chem Phys 99(12):9496–9511. https ://doi.org/10.1063/1.46548 4
37. Wefers MM, Kawashima H, Nelson KA (1995) Automated multidimensional coherent optical
spectroscopy with multiple phase-related femtosecond pulses. J Chem Phys 102(22):9133–
9136. https ://doi.org/10.1063/1.46886 2
38. Mukamel S (2000) Multidimensional femtosecond correlation spectroscopies of electronic
and vibrational excitations. Annu Rev Phys Chem 51:691–729. https ://doi.org/10.1146/annur
ev.physc hem.51.1.691
39. Kurnit NA, Hartmann SR, Abella ID (1964) Observation of photon echo. Phys Rev Lett
13(19):567. https ://doi.org/10.1103/PhysR evLet t.13.567
40. Hahn EL (1950) Spin echoes. Phys Rev 80(4):580–594. https ://doi.org/10.1103/PhysR ev.80.580
41. Hamm P, Zanni MT (2011) Concepts and methods of 2D infrared spectroscopy. Cambridge
University Press, Cambridge
42. Pastirk I, Lozovoy VV, Dantus M (2001) Femtosecond photon echo and virtual echo measurements of the vibronic and vibrational coherence relaxation times of iodine vapor. Chem Phys
Lett 333(1–2):76–82. https ://doi.org/10.1016/s0009 -2614(00)01334 -8
43. Pshenichnikov MS, deBoeij WP, Wiersma DA (1996) Coherent control over Liouville-space
pathways interference in transient four-wave mixing spectroscopy. Phys Rev Lett 76(25):4701–
4704. https ://doi.org/10.1103/PhysR evLet t.76.4701
44. Woerner M, Kuehn W, Bowlan P, Reimann K, Elsaesser T (2013) Ultrafast two-dimensional terahertz spectroscopy of elementary excitations in solids. New J Phys. https ://doi.
org/10.1088/1367-2630/15/2/02503 9
45. Tseng CH, Matsika S, Weinacht TC (2009) Two-dimensional ultrafast fourier transform spectroscopy in the deep ultraviolet. Opt Express 17(21):18788–18793. https ://doi.org/10.1364/
oe.17.01878 8
46. Krebs N, Pugliesi I, Hauer J, Riedle E (2013) Two-dimensional Fourier transform spectroscopy
in the ultraviolet with sub-20 fs pump pulses and 250–720 nm supercontinuum probe. New J
Phys. https ://doi.org/10.1088/1367-2630/15/8/08501 6
47. Desilvestri S, Fujimoto JG, Ippen EP, Gamble EB, Williams LR, Nelson KA (1985) Femtosecond time-resolved measurements of optic phonon dephasing by impulsive stimulated Ramanscattering in alpha-perylene crystal from 20 to 300K. Chem Phys Lett 116(2–3):146–152. https
://doi.org/10.1016/0009-2614(85)80143 -3
48. Dhar L, Rogers JA, Nelson KA (1994) Time-resolved vibrational spectroscopy in the impulsive
limit. Chem Rev 94(1):157–193. https ://doi.org/10.1021/cr000 25a00 6
49. Rullière C (2005) Femtosecond laser pulses: principles and experiments. Advanced texts in
physics, 2nd edn. Springer, New York
50. Gaumnitz T, Jain A, Pertot Y, Huppert M, Jordan I, Ardana-Lamas F, Worner HJ (2017) Streaking of 43-attosecond soft-X-ray pulses generated by a passively CEP-stable mid-infrared driver.
Opt Express 25(22):27506–27518. https ://doi.org/10.1364/oe.25.02750 6
51. Mukamel S (1995) Principles of nonlinear optical spectroscopy, vol 6. Oxford series in optical
and imaging sciences. Oxford University Press, New York
52. Savolainen J, Ahmed S, Hamm P (2013) Two-dimensional Raman-terahertz spectroscopy of
water. Proc Natl Acad Sci USA 110(51):20402–20407. https ://doi.org/10.1073/pnas.13174
59110
53. 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
54. Kraack JP, Wand A, Buckup T, Motzkus M, Ruhman S (2013) Mapping multidimensional excited
state dynamics using pump-impulsive-vibrational-spectroscopy and pump-degenerate-four-wavemixing. Phys Chem Chem Phys 15(34):14487–14501
55. Hauer J, Buckup T, Motzkus M (2007) Pump-degenerate four wave mixing as a technique for analyzing structural and electronic evolution: multidimensional time-resolved dynamics near a conical
intersection. J Phys Chem A 111(42):10517–10529
56. Kraack JP, Buckup T, Motzkus M (2013) Coherent high-frequency vibrational dynamics in the
excited electronic state of all-trans retinal derivatives. J Phys Chem Lett 4(3):383–387
20
Reprinted from the journal
1 3
35. Consani C, Aubock G, van Mourik F, Chergui M (2013) Ultrafast tryptophan-to-heme electron
transfer in myoglobins revealed by UV 2D spectroscopy. Science 339(6127):1586–1589. https ://
doi.org/10.1126/scien ce.12307 58
36. Tanimura Y, Mukamel S (1993) 2-Dimensional femtosecond vibrational spectroscopy of liquids. J Chem Phys 99(12):9496–9511. https ://doi.org/10.1063/1.46548 4
37. Wefers MM, Kawashima H, Nelson KA (1995) Automated multidimensional coherent optical
spectroscopy with multiple phase-related femtosecond pulses. J Chem Phys 102(22):9133–
9136. https ://doi.org/10.1063/1.46886 2
38. Mukamel S (2000) Multidimensional femtosecond correlation spectroscopies of electronic
and vibrational excitations. Annu Rev Phys Chem 51:691–729. https ://doi.org/10.1146/annur
ev.physc hem.51.1.691
39. Kurnit NA, Hartmann SR, Abella ID (1964) Observation of photon echo. Phys Rev Lett
13(19):567. https ://doi.org/10.1103/PhysR evLet t.13.567
40. Hahn EL (1950) Spin echoes. Phys Rev 80(4):580–594. https ://doi.org/10.1103/PhysR ev.80.580
41. Hamm P, Zanni MT (2011) Concepts and methods of 2D infrared spectroscopy. Cambridge
University Press, Cambridge
42. Pastirk I, Lozovoy VV, Dantus M (2001) Femtosecond photon echo and virtual echo measurements of the vibronic and vibrational coherence relaxation times of iodine vapor. Chem Phys
Lett 333(1–2):76–82. https ://doi.org/10.1016/s0009 -2614(00)01334 -8
43. Pshenichnikov MS, deBoeij WP, Wiersma DA (1996) Coherent control over Liouville-space
pathways interference in transient four-wave mixing spectroscopy. Phys Rev Lett 76(25):4701–
4704. https ://doi.org/10.1103/PhysR evLet t.76.4701
44. Woerner M, Kuehn W, Bowlan P, Reimann K, Elsaesser T (2013) Ultrafast two-dimensional terahertz spectroscopy of elementary excitations in solids. New J Phys. https ://doi.
org/10.1088/1367-2630/15/2/02503 9
45. Tseng CH, Matsika S, Weinacht TC (2009) Two-dimensional ultrafast fourier transform spectroscopy in the deep ultraviolet. Opt Express 17(21):18788–18793. https ://doi.org/10.1364/
oe.17.01878 8
46. Krebs N, Pugliesi I, Hauer J, Riedle E (2013) Two-dimensional Fourier transform spectroscopy
in the ultraviolet with sub-20 fs pump pulses and 250–720 nm supercontinuum probe. New J
Phys. https ://doi.org/10.1088/1367-2630/15/8/08501 6
47. Desilvestri S, Fujimoto JG, Ippen EP, Gamble EB, Williams LR, Nelson KA (1985) Femtosecond time-resolved measurements of optic phonon dephasing by impulsive stimulated Ramanscattering in alpha-perylene crystal from 20 to 300K. Chem Phys Lett 116(2–3):146–152. https
://doi.org/10.1016/0009-2614(85)80143 -3
48. Dhar L, Rogers JA, Nelson KA (1994) Time-resolved vibrational spectroscopy in the impulsive
limit. Chem Rev 94(1):157–193. https ://doi.org/10.1021/cr000 25a00 6
49. Rullière C (2005) Femtosecond laser pulses: principles and experiments. Advanced texts in
physics, 2nd edn. Springer, New York
50. Gaumnitz T, Jain A, Pertot Y, Huppert M, Jordan I, Ardana-Lamas F, Worner HJ (2017) Streaking of 43-attosecond soft-X-ray pulses generated by a passively CEP-stable mid-infrared driver.
Opt Express 25(22):27506–27518. https ://doi.org/10.1364/oe.25.02750 6
51. Mukamel S (1995) Principles of nonlinear optical spectroscopy, vol 6. Oxford series in optical
and imaging sciences. Oxford University Press, New York
52. Savolainen J, Ahmed S, Hamm P (2013) Two-dimensional Raman-terahertz spectroscopy of
water. Proc Natl Acad Sci USA 110(51):20402–20407. https ://doi.org/10.1073/pnas.13174
59110
53. 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
54. Kraack JP, Wand A, Buckup T, Motzkus M, Ruhman S (2013) Mapping multidimensional excited
state dynamics using pump-impulsive-vibrational-spectroscopy and pump-degenerate-four-wavemixing. Phys Chem Chem Phys 15(34):14487–14501
55. Hauer J, Buckup T, Motzkus M (2007) Pump-degenerate four wave mixing as a technique for analyzing structural and electronic evolution: multidimensional time-resolved dynamics near a conical
intersection. J Phys Chem A 111(42):10517–10529
56. Kraack JP, Buckup T, Motzkus M (2013) Coherent high-frequency vibrational dynamics in the
excited electronic state of all-trans retinal derivatives. J Phys Chem Lett 4(3):383–387
20
Reprinted from the journal
