282. Lewis NHC, Dong H, Oliver TAA, Fleming GR (2015) Measuring correlated electronic and
vibrational spectral dynamics using line shapes in two-dimensional electronic–vibrational spectroscopy. J Chem Phys. doi:10.1063/1.4919686
283. Lewis NHC, Dong H, Oliver TAA, Fleming GR (2015) A method for the direct measurement of
electronic site populations in a molecular aggregate using two-dimensional electronic-vibrational
spectroscopy. J Chem Phys. doi:10.1063/1.4931634
284. Lewis NHC, Gruenke NL, Oliver TAA, et al (2016) Observation of electronic excitation transfer
through light harvesting complex II using two-dimensional electronic–vibrational spectroscopy.
J Phys Chem Lett 4197–4206. doi:10.1021/acs.jpclett.6b02280
285. Dong H, Lewis NHC, Oliver TAA, Fleming GR (2015) Determining the static electronic and
vibrational energy correlations via two-dimensional electronic-vibrational spectroscopy. J Chem
Phys. doi:10.1063/1.4919684
286. Oliver TAA, Fleming GR (2015) Following coupled electronic-nuclear motion through conical
intersections in the ultrafast relaxation of b-Apo-8’-carotenal. J Phys Chem B 119:11428–11441.
doi:10.1021/acs.jpcb.5b04893
287. Buckup T, Kraack JP, Marek MS, Motzkus M (2013) Vibronic coupling in excited electronic states
investigated with resonant 2D Raman spectroscopy. EPJ Web Conf 41:5018
288. Tracy KM, Barich MV, Carver CL et al (2016) High-throughput two-dimensional infrared (2D IR)
spectroscopy achieved by interfacing microfluidic technology with a high repetition rate 2D IR
spectrometer. J Phys Chem Lett 7:4865–4870. doi:10.1021/acs.jpclett.6b01941
289. Dittrich PS, Manz A (2006) Lab-on-a-chip: microfluidics in drug discovery. Nat Rev Drug Discov
5:210–218. doi:10.1038/nrd1985
290. Johnson TJ, Ross D, Locascio LE (2002) Rapid microfluidic mixing. Anal Chem 74:45–51. doi:10.
1021/ac010895d
291. Wong SH, Ward MCL, Wharton CW (2004) Micro T-mixer as a rapid mixing micromixer. Sens
Actuators B Chem 100:359–379. doi:10.1016/j.snb.2004.02.008
292. Olson JS (1981) [38] Stopped-flow, rapid mixing measurements of ligand binding to hemoglobin
and red cells. Methods Enzymol 76:631–651. doi:10.1016/0076-6879(81)76148-2
293. Roder H, Wu ¨thrich K (1986) Protein folding kinetics by combined use of rapid mixing techniques
and NMR observation of individual amide protons. Proteins Struct Funct Genet 1:34–42. doi:10.
1002/prot.340010107
294. Roder H, Maki K, Latypov RF et al (2006) Early events in protein folding explored by rapid mixing
methods. Chem Rev 106:1836–1861. doi:10.1002/9783527619498.ch15
295. Chow AW (2002) Lab-on-a-chip: opportunities for chemical engineering. AIChE J 48:1590–1595.
doi:10.1002/aic.690480802
296. Hansen C, Quake SR (2003) Microfluidics in structural biology: smaller, faster… better. Curr Opin
Struct Biol 13:538–544. doi:10.1016/j.sbi.2003.09.010
297. Stone HA, Stroock AD, Ajdari A (2004) Engineering flows in small devices/microfluidics toward a
lab-on-a-chip. Annu Rev Fluid Mech 36:381–411. doi:10.1146/annurev.fluid.36.050802.122124
298. Jensen K (2001) Microreaction engineering—is small better? Chem Eng Sci 56:293–303. doi:10.
1016/S0009-2509(00)00230-X
299. Stone HA, Kim S (2001) Microfluidics: basic issues, applications, and challenges. AIChE J
47:1250–1254. doi:10.1002/aic.690470602
300. Watts P, Haswell SJ (2003) Microfluidic combinatorial chemistry. Curr Opin Chem Biol
7:380–387. doi:10.1016/S1367-5931(03)00050-4
301. Luther BM, Tracy KM, Gerrity M et al (2016) 2D IR spectroscopy at 100 kHz utilizing a Mid-IR
OPCPA laser source. Opt Express 24:4117–4127. doi:10.1364/OE.24.004117
302. Greetham GM, Donaldson PM, Nation C et al (2016) A 100 kHz time-resolved multiple-probe
femtosecond to second infrared absorption spectrometer. Appl Spectrosc 70:645–653
303. Chalus O, Bates PK, Smolarski M, Biegert J (2009) Mid-IR short-pulse OPCPA with micro-joule
energy at 100 kHz. Opt Express 17:3587–3594. doi:10.1364/OE.17.003587
304. Shim S-H, Strasfeld DB, Ling YL, Zanni MT (2007) Automated 2D IR spectroscopy using a mid-IR
pulse shaper and application of this technology to the human islet amyloid polypeptide. Proc Natl
Acad Sci 104:14197–14202. doi:10.1073/pnas.0700804104
305. Leger JD, Nyby CM, Varner C et al (2014) Fully automated dual-frequency three-pulse-echo 2DIR
spectrometer accessing spectral range from 800 to 4000 wavenumbers. Rev Sci Instrum. doi:10.
1063/1.4892480
Top Curr Chem (Z) (2017) 375:86
123
201
Reprinted from the journal
vibrational spectral dynamics using line shapes in two-dimensional electronic–vibrational spectroscopy. J Chem Phys. doi:10.1063/1.4919686
283. Lewis NHC, Dong H, Oliver TAA, Fleming GR (2015) A method for the direct measurement of
electronic site populations in a molecular aggregate using two-dimensional electronic-vibrational
spectroscopy. J Chem Phys. doi:10.1063/1.4931634
284. Lewis NHC, Gruenke NL, Oliver TAA, et al (2016) Observation of electronic excitation transfer
through light harvesting complex II using two-dimensional electronic–vibrational spectroscopy.
J Phys Chem Lett 4197–4206. doi:10.1021/acs.jpclett.6b02280
285. Dong H, Lewis NHC, Oliver TAA, Fleming GR (2015) Determining the static electronic and
vibrational energy correlations via two-dimensional electronic-vibrational spectroscopy. J Chem
Phys. doi:10.1063/1.4919684
286. Oliver TAA, Fleming GR (2015) Following coupled electronic-nuclear motion through conical
intersections in the ultrafast relaxation of b-Apo-8’-carotenal. J Phys Chem B 119:11428–11441.
doi:10.1021/acs.jpcb.5b04893
287. Buckup T, Kraack JP, Marek MS, Motzkus M (2013) Vibronic coupling in excited electronic states
investigated with resonant 2D Raman spectroscopy. EPJ Web Conf 41:5018
288. Tracy KM, Barich MV, Carver CL et al (2016) High-throughput two-dimensional infrared (2D IR)
spectroscopy achieved by interfacing microfluidic technology with a high repetition rate 2D IR
spectrometer. J Phys Chem Lett 7:4865–4870. doi:10.1021/acs.jpclett.6b01941
289. Dittrich PS, Manz A (2006) Lab-on-a-chip: microfluidics in drug discovery. Nat Rev Drug Discov
5:210–218. doi:10.1038/nrd1985
290. Johnson TJ, Ross D, Locascio LE (2002) Rapid microfluidic mixing. Anal Chem 74:45–51. doi:10.
1021/ac010895d
291. Wong SH, Ward MCL, Wharton CW (2004) Micro T-mixer as a rapid mixing micromixer. Sens
Actuators B Chem 100:359–379. doi:10.1016/j.snb.2004.02.008
292. Olson JS (1981) [38] Stopped-flow, rapid mixing measurements of ligand binding to hemoglobin
and red cells. Methods Enzymol 76:631–651. doi:10.1016/0076-6879(81)76148-2
293. Roder H, Wu ¨thrich K (1986) Protein folding kinetics by combined use of rapid mixing techniques
and NMR observation of individual amide protons. Proteins Struct Funct Genet 1:34–42. doi:10.
1002/prot.340010107
294. Roder H, Maki K, Latypov RF et al (2006) Early events in protein folding explored by rapid mixing
methods. Chem Rev 106:1836–1861. doi:10.1002/9783527619498.ch15
295. Chow AW (2002) Lab-on-a-chip: opportunities for chemical engineering. AIChE J 48:1590–1595.
doi:10.1002/aic.690480802
296. Hansen C, Quake SR (2003) Microfluidics in structural biology: smaller, faster… better. Curr Opin
Struct Biol 13:538–544. doi:10.1016/j.sbi.2003.09.010
297. Stone HA, Stroock AD, Ajdari A (2004) Engineering flows in small devices/microfluidics toward a
lab-on-a-chip. Annu Rev Fluid Mech 36:381–411. doi:10.1146/annurev.fluid.36.050802.122124
298. Jensen K (2001) Microreaction engineering—is small better? Chem Eng Sci 56:293–303. doi:10.
1016/S0009-2509(00)00230-X
299. Stone HA, Kim S (2001) Microfluidics: basic issues, applications, and challenges. AIChE J
47:1250–1254. doi:10.1002/aic.690470602
300. Watts P, Haswell SJ (2003) Microfluidic combinatorial chemistry. Curr Opin Chem Biol
7:380–387. doi:10.1016/S1367-5931(03)00050-4
301. Luther BM, Tracy KM, Gerrity M et al (2016) 2D IR spectroscopy at 100 kHz utilizing a Mid-IR
OPCPA laser source. Opt Express 24:4117–4127. doi:10.1364/OE.24.004117
302. Greetham GM, Donaldson PM, Nation C et al (2016) A 100 kHz time-resolved multiple-probe
femtosecond to second infrared absorption spectrometer. Appl Spectrosc 70:645–653
303. Chalus O, Bates PK, Smolarski M, Biegert J (2009) Mid-IR short-pulse OPCPA with micro-joule
energy at 100 kHz. Opt Express 17:3587–3594. doi:10.1364/OE.17.003587
304. Shim S-H, Strasfeld DB, Ling YL, Zanni MT (2007) Automated 2D IR spectroscopy using a mid-IR
pulse shaper and application of this technology to the human islet amyloid polypeptide. Proc Natl
Acad Sci 104:14197–14202. doi:10.1073/pnas.0700804104
305. Leger JD, Nyby CM, Varner C et al (2014) Fully automated dual-frequency three-pulse-echo 2DIR
spectrometer accessing spectral range from 800 to 4000 wavenumbers. Rev Sci Instrum. doi:10.
1063/1.4892480
Top Curr Chem (Z) (2017) 375:86
123
201
Reprinted from the journal
