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spectroscopy. Anal Bioanal Chem 388:47–54. doi:10.1007/s00216-006-1071-4
308. Ataka K, Stripp ST, Heberle J (2013) Surface-enhanced infrared absorption spectroscopy (SEIRAS)
to probe monolayers of membrane proteins. Biochim Biophys Acta-Biomembr 1828:2283–2293.
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309. Neubrech F, Pucci A, Cornelius TW et al (2008) Resonant plasmonic and vibrational coupling in a
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311. Selig O, Siffels R, Rezus YLA (2015) Ultrasensitive ultrafast vibrational spectroscopy employing
the near field of gold nanoantennas. Phys Rev Lett 114(233004):1–5. doi:10.1103/PhysRevLett.114.
233004
312. Donaldson PM, Hamm P (2013) Gold nanoparticle capping layers: structure, dynamics, and surface
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anie.201204973
313. Arrivo SM, Dougherty TP, Grubbs WT, Heilweil EJ (1995) Ultrafast infrared spectroscopy of
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314. Witte T, Hornung T, Windhorn L et al (2003) Controlling molecular ground-state dissociation by
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315. Windhorn L, Witte T, Yeston JS et al (2002) Molecular dissociation by mid-IR femtosecond pulses.
Chem Phys Lett 357:85–90. doi:10.1016/S0009-2614(02)00444-X
316. Falvo C, Debnath A, Meier C (2013) Vibrational ladder climbing in carboxy-hemoglobin: effects of
the protein environment. J Chem Phys. doi:10.1063/1.4799271
317. Debnath A, Falvo C, Meier C (2013) State-selective excitation of the CO stretch in carboxyhemoglobin by mid-IR laser pulse shaping: a theoretical investigation. J Phys Chem A
117:12884–12888. doi:10.1021/jp410473u
318. Witte T, Yeston JS, Motzkus M et al (2004) Femtosecond infrared coherent excitation of liquid
phase vibrational population distributions (v [ 5). Chem Phys Lett 392:156–161. doi:10.1016/j.
cplett.2004.05.052
319. Maas DJ, Duncan DI, Vrijen RB et al (1998) Vibrational ladder climbing in NO by (sub)picosecond
frequency-chirped infrared laser pulses. Chem Phys Lett 290:75–80. doi:10.1016/S00092614(98)00531-4
320. Kleiman VD, Arrivo SM, Melinger JS, Heilweil EJ (1998) Controlling condensed-phase vibrational
excitation with tailored infrared pulses. Chem Phys 233:207–216
321. Nuernberger P, Vieille T, Ventalon C, Joffre M (2011) Impact of pulse polarization on coherent
vibrational ladder climbing signals. J Phys Chem B 115:5554–5563. doi:10.1021/jp1113762
322. Ventalon C, Fraser JM, Vos MH et al (2004) Coherent vibrational climbing in carboxyhemoglobin.
Proc Natl Acad Sci USA 101:13216–13220. doi:10.1073/pnas.0401844101
323. Strasfeld DB, Shim SH, Zanni MT (2007) Controlling vibrational excitation with shaped Mid-IR
pulses. Phys Rev Lett 99:1–4. doi:10.1103/PhysRevLett.99.038102
324. Wodtke AM, Matsiev D, Auerbach D (2008) Energy transfer and chemical dynamics at solid
surfaces: the special role of charge transfer. Prog Surf Sci 83:167–214. doi:10.1016/j.progsurf.2008.
02.001
325. Golibrzuch K, Bartels N, Auerbach DJ, Wodtke AM (2015) The dynamics of molecular interactions
and chemical reactions at metal surfaces: testing the foundations of theory. Annu Rev Phys Chem
66:399–425. doi:10.1146/annurev-physchem-040214-121958
326. Kru ¨ger BC, Meyer S, Kandratsenka A et al (2016) Vibrational inelasticity of highly vibrationally
excited NO on Ag(111). J Phys Chem Lett 7:441–446. doi:10.1021/acs.jpclett.5b02448
327. Silva M, Jongma R, Field RW, Wodtke AM (2001) The dynamics of ‘‘stretched molecules’’:
experimental studies of highly vibrationally excited molecules with stimulated emission pumping.
Annu Rev Phys Chem 52:811–852. doi:10.1146/annurev.physchem.52.1.811
328. Kneba M, Wolfrum J (1980) Bimolecular reactions of vibrationally excited molecules. Annu Rev
Phys Chem 31:47–79
Top Curr Chem (Z) (2017) 375:86
123
202
Reprinted from the journal
bound to HIV-1 reverse transcriptase. Nat Chem 5:174–181. doi:10.1038/nchem.1559
307. Ataka K, Heberle J (2007) Biochemical applications of surface-enhanced infrared absorption
spectroscopy. Anal Bioanal Chem 388:47–54. doi:10.1007/s00216-006-1071-4
308. Ataka K, Stripp ST, Heberle J (2013) Surface-enhanced infrared absorption spectroscopy (SEIRAS)
to probe monolayers of membrane proteins. Biochim Biophys Acta-Biomembr 1828:2283–2293.
doi:10.1016/j.bbamem.2013.04.026
309. Neubrech F, Pucci A, Cornelius TW et al (2008) Resonant plasmonic and vibrational coupling in a
tailored nanoantenna for infrared detection. Phys Rev Lett 101(157403):1–4. doi:10.1103/
PhysRevLett.101.157403
310. Neubrech F, Pucci A (2013) Plasmonic enhancement of vibrational excitations in the infrared. IEEE
J Sel Top Quantum Electron 19:4600809. doi:10.1109/JSTQE.2012.2227302
311. Selig O, Siffels R, Rezus YLA (2015) Ultrasensitive ultrafast vibrational spectroscopy employing
the near field of gold nanoantennas. Phys Rev Lett 114(233004):1–5. doi:10.1103/PhysRevLett.114.
233004
312. Donaldson PM, Hamm P (2013) Gold nanoparticle capping layers: structure, dynamics, and surface
enhancement measured using 2D-IR spectroscopy. Angew Chem Int Ed 52:634–638. doi:10.1002/
anie.201204973
313. Arrivo SM, Dougherty TP, Grubbs WT, Heilweil EJ (1995) Ultrafast infrared spectroscopy of
vibrational CO-stretch up-pumping and relaxation dynamics of W(CO)6. Chem Phys Lett
235:247–254
314. Witte T, Hornung T, Windhorn L et al (2003) Controlling molecular ground-state dissociation by
optimizing vibrational ladder climbing. J Chem Phys 118:2021–2024. doi:10.1063/1.1540101
315. Windhorn L, Witte T, Yeston JS et al (2002) Molecular dissociation by mid-IR femtosecond pulses.
Chem Phys Lett 357:85–90. doi:10.1016/S0009-2614(02)00444-X
316. Falvo C, Debnath A, Meier C (2013) Vibrational ladder climbing in carboxy-hemoglobin: effects of
the protein environment. J Chem Phys. doi:10.1063/1.4799271
317. Debnath A, Falvo C, Meier C (2013) State-selective excitation of the CO stretch in carboxyhemoglobin by mid-IR laser pulse shaping: a theoretical investigation. J Phys Chem A
117:12884–12888. doi:10.1021/jp410473u
318. Witte T, Yeston JS, Motzkus M et al (2004) Femtosecond infrared coherent excitation of liquid
phase vibrational population distributions (v [ 5). Chem Phys Lett 392:156–161. doi:10.1016/j.
cplett.2004.05.052
319. Maas DJ, Duncan DI, Vrijen RB et al (1998) Vibrational ladder climbing in NO by (sub)picosecond
frequency-chirped infrared laser pulses. Chem Phys Lett 290:75–80. doi:10.1016/S00092614(98)00531-4
320. Kleiman VD, Arrivo SM, Melinger JS, Heilweil EJ (1998) Controlling condensed-phase vibrational
excitation with tailored infrared pulses. Chem Phys 233:207–216
321. Nuernberger P, Vieille T, Ventalon C, Joffre M (2011) Impact of pulse polarization on coherent
vibrational ladder climbing signals. J Phys Chem B 115:5554–5563. doi:10.1021/jp1113762
322. Ventalon C, Fraser JM, Vos MH et al (2004) Coherent vibrational climbing in carboxyhemoglobin.
Proc Natl Acad Sci USA 101:13216–13220. doi:10.1073/pnas.0401844101
323. Strasfeld DB, Shim SH, Zanni MT (2007) Controlling vibrational excitation with shaped Mid-IR
pulses. Phys Rev Lett 99:1–4. doi:10.1103/PhysRevLett.99.038102
324. Wodtke AM, Matsiev D, Auerbach D (2008) Energy transfer and chemical dynamics at solid
surfaces: the special role of charge transfer. Prog Surf Sci 83:167–214. doi:10.1016/j.progsurf.2008.
02.001
325. Golibrzuch K, Bartels N, Auerbach DJ, Wodtke AM (2015) The dynamics of molecular interactions
and chemical reactions at metal surfaces: testing the foundations of theory. Annu Rev Phys Chem
66:399–425. doi:10.1146/annurev-physchem-040214-121958
326. Kru ¨ger BC, Meyer S, Kandratsenka A et al (2016) Vibrational inelasticity of highly vibrationally
excited NO on Ag(111). J Phys Chem Lett 7:441–446. doi:10.1021/acs.jpclett.5b02448
327. Silva M, Jongma R, Field RW, Wodtke AM (2001) The dynamics of ‘‘stretched molecules’’:
experimental studies of highly vibrationally excited molecules with stimulated emission pumping.
Annu Rev Phys Chem 52:811–852. doi:10.1146/annurev.physchem.52.1.811
328. Kneba M, Wolfrum J (1980) Bimolecular reactions of vibrationally excited molecules. Annu Rev
Phys Chem 31:47–79
Top Curr Chem (Z) (2017) 375:86
123
202
Reprinted from the journal
