211. Volkov VV, Palmer DJ, Righini R (2007) Distinct water species confined at the interface of a
phospholipid membrane. Phys Rev Lett 99:1–4. doi:10.1103/PhysRevLett.99.078302
212. Bakulin AA, Selig O, Bakker HJ, et al (2015) Real-time observation of organic cation reorientation
in methylammonium lead iodide perovskites. J Phys Chem Lett 3663–3669. doi:10.1021/acs.jpclett.
5b01555
213. Mizuno N, Misono M (1998) Heterogeneous catalysis. Chem Bond Surf Interfaces 98:199–217.
doi:10.1016/B978-044452837-7.50005-8
214. Medders GR, Paesani F (2014) Water dynamics in metal - Organic frameworks: effects of
heterogeneous confinement predicted by computational spectroscopy. J Phys Chem Lett
5:2897–2902
215. Nishida J, Tamimi A, Fei H et al (2014) Structural dynamics inside a functionalized metal-organic
framework probed by ultrafast 2D IR spectroscopy. Proc Nat Acad Sci USA 111:18442–18447.
doi:10.1073/pnas.1422194112
216. Yoon M, Srirambalaji R, Kim K (2012) Homochiral metal-organic frameworks for asymmetric
heterogeneous catalysis. Chem Rev 112:1196–1231. doi:10.1021/cr2003147
217. Kreno LE, Leong K, Farha OK et al (2012) Metal-organic framework materials as chemical sensors.
Chem Rev 112:1105–1125. doi:10.1021/cr200324t (Washington, DC, United States)
218. Lotti D, Hamm P, Kraack JP (2016) Surface-sensitive spectro-electrochemistry using ultrafast 2D
ATR IR spectroscopy. J Phys Chem C 120:2883–2892. doi:10.1021/acs.jpcc.6b00395
219. Lambert DK (1988) Vibrational stark effect of CO on Ni(100), and CO in the aqueous double layer:
experiment, theory, and models. J Chem Phys 89:3847. doi:10.1063/1.454860
220. Hush NS, Reimers JR (1995) Vibrational stark spectroscopy. 1. basic theory and application to the
CO stretch. J Phys Chem 99:15798–15805. doi:10.1021/j100043a018
221. Chattopadhyay A, Boxer SG (1995) Vibrational stark effect spectroscopy. J Am Chem Soc
117:1449–1450
222. Lambert DK (1996) Vibrational stark effect of adsorbates at electrochemical interfaces. Electrochim Acta 41:623–630. doi:10.1016/0013-4686(95)00349-5
223. Fried SD, Boxer SG (2015) Measuring electric fields and noncovalent interactions using the
vibrational stark effect. Acc Chem Res 48:998–1006. doi:10.1021/ar500464j
224. Mojet BL, Ebbesen SD, Lefferts L (2010) Light at the interface: the potential of attenuated total
reflection infrared spectroscopy for understanding heterogeneous catalysis in water. Chem Soc Rev
39:4643–4655. doi:10.1039/c0cs00014k
225. El Khoury Y, van Wilderen LJGW, Vogt T et al (2015) A spectroelectrochemical cell for ultrafast
two-dimensional infrared spectroscopy. Rev Sci Instrum 86(083102):1–5. doi:10.1063/1.4927533
226. El Khoury Y, van Wilderen LJGW, Bredenbeck J (2015) Ultrafast 2D-IR spectroelectrochemistry
of flavin mononucleotide. J Chem Phys 142:212416. doi:10.1063/1.4916916
227. Nishida J, Yan C, Fayer MD (2017) Enhanced nonlinear spectroscopy for monolayers and thin films
in near-Brewster ’ s angle reflection pump-probe geometry. J Chem Phys 146:94201. doi:10.1063/1.
4977508
228. Liu W-T, Shen YR (2014) In situ sum-frequency vibrational spectroscopy of electrochemical
interfaces with surface plasmon resonance. Proc Natl Acad Sci 111:1293–1297. doi:10.1073/pnas.
1317290111
229. Peremans A, Tadjeddine A, Zheng W-Q et al (1996) Vibrational dynamics of CO at single-crystal
platinum electrodes in aqueous and non-aqueous electrolytes. Surf Sci 368:384–388. doi:10.1016/
S0039-6028(96)01080-1
230. Peremans A, Tadjeddine A (1994) Vibrational spectroscopy of electrochemically deposited
hydrogen on platinum. Phys Rev Lett 73:3010–3013
231. Roberts ST, Loparo JJ, Ramasesha K, Tokmakoff A (2011) A fast-scanning Fourier transform 2D
IR interferometer. Opt Commun 284:1062–1066. doi:10.1016/j.optcom.2010.10.049
232. Garrett-Roe S, Hamm P (2009) What can we learn from three-dimensional infrared spectroscopy?
Acc Chem Res 42:1412–1422. doi:10.1021/ar900028k
233. Mukamel S, Piryatinski A, Chernyak V (1999) Two-dimensional Raman echoes: femtosecond view
of molecular structure and vibrational coherence. Acc Chem Res 32:145–154. doi:10.1021/
ar960206y
234. Tokmakoff A, Lang M, Larsen D et al (1997) Two-dimensional Raman spectroscopy of vibrational
interactions in liquids. Phys Rev Lett 79:2702–2705. doi:10.1103/PhysRevLett.79.2702
235. Tokmakoff A, Fleming GR (1997) Two-dimensional Raman spectroscopy of the intermolecular
modes of liquid CS2. J Chem Phys 106:2569–2582. doi:10.1063/1.473361
Top Curr Chem (Z) (2017) 375:86
123
198
Reprinted from the journal
phospholipid membrane. Phys Rev Lett 99:1–4. doi:10.1103/PhysRevLett.99.078302
212. Bakulin AA, Selig O, Bakker HJ, et al (2015) Real-time observation of organic cation reorientation
in methylammonium lead iodide perovskites. J Phys Chem Lett 3663–3669. doi:10.1021/acs.jpclett.
5b01555
213. Mizuno N, Misono M (1998) Heterogeneous catalysis. Chem Bond Surf Interfaces 98:199–217.
doi:10.1016/B978-044452837-7.50005-8
214. Medders GR, Paesani F (2014) Water dynamics in metal - Organic frameworks: effects of
heterogeneous confinement predicted by computational spectroscopy. J Phys Chem Lett
5:2897–2902
215. Nishida J, Tamimi A, Fei H et al (2014) Structural dynamics inside a functionalized metal-organic
framework probed by ultrafast 2D IR spectroscopy. Proc Nat Acad Sci USA 111:18442–18447.
doi:10.1073/pnas.1422194112
216. Yoon M, Srirambalaji R, Kim K (2012) Homochiral metal-organic frameworks for asymmetric
heterogeneous catalysis. Chem Rev 112:1196–1231. doi:10.1021/cr2003147
217. Kreno LE, Leong K, Farha OK et al (2012) Metal-organic framework materials as chemical sensors.
Chem Rev 112:1105–1125. doi:10.1021/cr200324t (Washington, DC, United States)
218. Lotti D, Hamm P, Kraack JP (2016) Surface-sensitive spectro-electrochemistry using ultrafast 2D
ATR IR spectroscopy. J Phys Chem C 120:2883–2892. doi:10.1021/acs.jpcc.6b00395
219. Lambert DK (1988) Vibrational stark effect of CO on Ni(100), and CO in the aqueous double layer:
experiment, theory, and models. J Chem Phys 89:3847. doi:10.1063/1.454860
220. Hush NS, Reimers JR (1995) Vibrational stark spectroscopy. 1. basic theory and application to the
CO stretch. J Phys Chem 99:15798–15805. doi:10.1021/j100043a018
221. Chattopadhyay A, Boxer SG (1995) Vibrational stark effect spectroscopy. J Am Chem Soc
117:1449–1450
222. Lambert DK (1996) Vibrational stark effect of adsorbates at electrochemical interfaces. Electrochim Acta 41:623–630. doi:10.1016/0013-4686(95)00349-5
223. Fried SD, Boxer SG (2015) Measuring electric fields and noncovalent interactions using the
vibrational stark effect. Acc Chem Res 48:998–1006. doi:10.1021/ar500464j
224. Mojet BL, Ebbesen SD, Lefferts L (2010) Light at the interface: the potential of attenuated total
reflection infrared spectroscopy for understanding heterogeneous catalysis in water. Chem Soc Rev
39:4643–4655. doi:10.1039/c0cs00014k
225. El Khoury Y, van Wilderen LJGW, Vogt T et al (2015) A spectroelectrochemical cell for ultrafast
two-dimensional infrared spectroscopy. Rev Sci Instrum 86(083102):1–5. doi:10.1063/1.4927533
226. El Khoury Y, van Wilderen LJGW, Bredenbeck J (2015) Ultrafast 2D-IR spectroelectrochemistry
of flavin mononucleotide. J Chem Phys 142:212416. doi:10.1063/1.4916916
227. Nishida J, Yan C, Fayer MD (2017) Enhanced nonlinear spectroscopy for monolayers and thin films
in near-Brewster ’ s angle reflection pump-probe geometry. J Chem Phys 146:94201. doi:10.1063/1.
4977508
228. Liu W-T, Shen YR (2014) In situ sum-frequency vibrational spectroscopy of electrochemical
interfaces with surface plasmon resonance. Proc Natl Acad Sci 111:1293–1297. doi:10.1073/pnas.
1317290111
229. Peremans A, Tadjeddine A, Zheng W-Q et al (1996) Vibrational dynamics of CO at single-crystal
platinum electrodes in aqueous and non-aqueous electrolytes. Surf Sci 368:384–388. doi:10.1016/
S0039-6028(96)01080-1
230. Peremans A, Tadjeddine A (1994) Vibrational spectroscopy of electrochemically deposited
hydrogen on platinum. Phys Rev Lett 73:3010–3013
231. Roberts ST, Loparo JJ, Ramasesha K, Tokmakoff A (2011) A fast-scanning Fourier transform 2D
IR interferometer. Opt Commun 284:1062–1066. doi:10.1016/j.optcom.2010.10.049
232. Garrett-Roe S, Hamm P (2009) What can we learn from three-dimensional infrared spectroscopy?
Acc Chem Res 42:1412–1422. doi:10.1021/ar900028k
233. Mukamel S, Piryatinski A, Chernyak V (1999) Two-dimensional Raman echoes: femtosecond view
of molecular structure and vibrational coherence. Acc Chem Res 32:145–154. doi:10.1021/
ar960206y
234. Tokmakoff A, Lang M, Larsen D et al (1997) Two-dimensional Raman spectroscopy of vibrational
interactions in liquids. Phys Rev Lett 79:2702–2705. doi:10.1103/PhysRevLett.79.2702
235. Tokmakoff A, Fleming GR (1997) Two-dimensional Raman spectroscopy of the intermolecular
modes of liquid CS2. J Chem Phys 106:2569–2582. doi:10.1063/1.473361
Top Curr Chem (Z) (2017) 375:86
123
198
Reprinted from the journal
