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8. Hirose C, Akamatsu A, Domen K (1992) Formulas for the analysis of surface sum-frequency
generation spectrum by CH stretching modes of methyl and methylene groups. J Chem Phys
96:997–1004
9. Hirose C, Hiroyoshi Y, Akamatsu N, Domen K (1993) Orientation analysis by simulation of
vibrational sum frequency generation spectrum: CH stretching bands of the methyl group. J
Phys Chem 97:10064–10069
10. Ishihara T, Ishiyama T, Morita A (2015) Surface structure of methanol/water solutions via
sum-frequency orientational analysis and molecular dynamics simulation. J Phys Chem C
119:9879–9889
11. Ishiyama T, Morita A (2006) Intermolecular correlation effect in sum frequency generation
spectroscopy of electrolyte aqueous solution. Chem Phys Lett 431:78–82
12. Ishiyama T, Morita A (2007) Molecular dynamics study of gas-liquid aqueous sodium halide
interfaces II. analysis of vibrational sum frequency generation spectra. J Phys Chem C
111:738–748
13. Kubo R, Toda M, Hashitsume N (1991) Statistical mechanics II: nonequilibrium statistical
mechanics, 2nd edn. Springer, Berlin
14. McQuarrie DA (2000) Statistical mechanics, 2nd edn. University of Science Books, Sausalito
15. Morita A, Hynes JT (2000) A theoretical analysis of the sum frequency generation spectrum
of the water surface. Chem Phys 258:371–390
16. Morita A, Hynes JT (2002) A theoretical analysis of the sum frequency generation spectrum
of the water surface II. Time-dependent approach. J Phys Chem B 106:673–685
17. Morita A, Ishiyama T (2008) Recent progress in theoretical analysis of vibrational sum
frequency generation spectroscopy. Phys Chem Chem Phys 10:5801–5816
18. Pimentel GC, McClellan AL (1960) The Hydrogen Bond. W. H. Freemann, San Francisco
19. Saito K, Peng Q, Qiao L, Wang L, Joutsuka T, Ishiyama T, Ye S, Morita A (2017) Theoretical
and experimental examination on SFG polarization analysis at acetonitrile-water solution
surfaces. Phys Chem Chem Phys 19:8941–8961
20. Shultz MJ, Bisson P, Groenzin H, Li I (2010) Multiplexed polarization spectroscopy: measuring surface hyperpolarizability orientation. J Chem Phys 133:054702
21. Walker DS, Hore DK, Richmond GL (2006) Understanding the population, coordination, and
orientation of water species contributing to the nonlinear optical spectroscopy of the vaporwater interface through molecular dynamics simulations. J Phys Chem B 110:20451–20459
22. Walker DS, Richmond GL (2007) Understanding the effects of hydrogen bonding at the vaporwater interface: vibrational sum frequency spectroscopy of H 2 O/HOD/D 2 O mixtures studied
using molecular dynamics simulations. J Phys Chem C 111:8321–8330
23. Wang H-F, Gan W, Lu R, Rao Y, Wu B-H (2005) Quantitative spectral and orientational
analysis in surface sum frequency generation vibrational spectroscopy (SFG-VS). Int Rev Phys
Chem 24:191–256
24. Wang L, Ishiyama T, Morita A (2017) Theoretical investigation of C-H vibrational spectroscopy. 1. Modeling of methyl and methylene groups of ethanol with different conformers. J
Phys Chem A 121:6687–6700
25. Wang L, Ishiyama T, Morita A (2017) Theoretical investigation of C-H vibrational spectroscopy. 2. Unified assignment method of IR, Raman and SFG spectra of ethanol. J Phys
Chem A 121:6701–6712
26. Wei X, Shen YR (2001) Motional effect in surface sum-frequency vibrational spectroscopy.
Phys Rev Lett 86:4799
27. Yeh YL, Zhang C, Held H, Mebel AM, Wei X, Lin SH, Shen Y (2001) Structure of the acetone
liquid/vapor interface. J Chem Phys 114:1837–1843
28. Zhang D, Gutow J, Eisenthal KB (1994) Vibrational spectra, orientations, and phase transitions
in long-chain amphiphiles at the air/water interface: probing the head and tail groups by sum
frequency generation. J Phys Chem 98:13729–13734
103
8. Hirose C, Akamatsu A, Domen K (1992) Formulas for the analysis of surface sum-frequency
generation spectrum by CH stretching modes of methyl and methylene groups. J Chem Phys
96:997–1004
9. Hirose C, Hiroyoshi Y, Akamatsu N, Domen K (1993) Orientation analysis by simulation of
vibrational sum frequency generation spectrum: CH stretching bands of the methyl group. J
Phys Chem 97:10064–10069
10. Ishihara T, Ishiyama T, Morita A (2015) Surface structure of methanol/water solutions via
sum-frequency orientational analysis and molecular dynamics simulation. J Phys Chem C
119:9879–9889
11. Ishiyama T, Morita A (2006) Intermolecular correlation effect in sum frequency generation
spectroscopy of electrolyte aqueous solution. Chem Phys Lett 431:78–82
12. Ishiyama T, Morita A (2007) Molecular dynamics study of gas-liquid aqueous sodium halide
interfaces II. analysis of vibrational sum frequency generation spectra. J Phys Chem C
111:738–748
13. Kubo R, Toda M, Hashitsume N (1991) Statistical mechanics II: nonequilibrium statistical
mechanics, 2nd edn. Springer, Berlin
14. McQuarrie DA (2000) Statistical mechanics, 2nd edn. University of Science Books, Sausalito
15. Morita A, Hynes JT (2000) A theoretical analysis of the sum frequency generation spectrum
of the water surface. Chem Phys 258:371–390
16. Morita A, Hynes JT (2002) A theoretical analysis of the sum frequency generation spectrum
of the water surface II. Time-dependent approach. J Phys Chem B 106:673–685
17. Morita A, Ishiyama T (2008) Recent progress in theoretical analysis of vibrational sum
frequency generation spectroscopy. Phys Chem Chem Phys 10:5801–5816
18. Pimentel GC, McClellan AL (1960) The Hydrogen Bond. W. H. Freemann, San Francisco
19. Saito K, Peng Q, Qiao L, Wang L, Joutsuka T, Ishiyama T, Ye S, Morita A (2017) Theoretical
and experimental examination on SFG polarization analysis at acetonitrile-water solution
surfaces. Phys Chem Chem Phys 19:8941–8961
20. Shultz MJ, Bisson P, Groenzin H, Li I (2010) Multiplexed polarization spectroscopy: measuring surface hyperpolarizability orientation. J Chem Phys 133:054702
21. Walker DS, Hore DK, Richmond GL (2006) Understanding the population, coordination, and
orientation of water species contributing to the nonlinear optical spectroscopy of the vaporwater interface through molecular dynamics simulations. J Phys Chem B 110:20451–20459
22. Walker DS, Richmond GL (2007) Understanding the effects of hydrogen bonding at the vaporwater interface: vibrational sum frequency spectroscopy of H 2 O/HOD/D 2 O mixtures studied
using molecular dynamics simulations. J Phys Chem C 111:8321–8330
23. Wang H-F, Gan W, Lu R, Rao Y, Wu B-H (2005) Quantitative spectral and orientational
analysis in surface sum frequency generation vibrational spectroscopy (SFG-VS). Int Rev Phys
Chem 24:191–256
24. Wang L, Ishiyama T, Morita A (2017) Theoretical investigation of C-H vibrational spectroscopy. 1. Modeling of methyl and methylene groups of ethanol with different conformers. J
Phys Chem A 121:6687–6700
25. Wang L, Ishiyama T, Morita A (2017) Theoretical investigation of C-H vibrational spectroscopy. 2. Unified assignment method of IR, Raman and SFG spectra of ethanol. J Phys
Chem A 121:6701–6712
26. Wei X, Shen YR (2001) Motional effect in surface sum-frequency vibrational spectroscopy.
Phys Rev Lett 86:4799
27. Yeh YL, Zhang C, Held H, Mebel AM, Wei X, Lin SH, Shen Y (2001) Structure of the acetone
liquid/vapor interface. J Chem Phys 114:1837–1843
28. Zhang D, Gutow J, Eisenthal KB (1994) Vibrational spectra, orientations, and phase transitions
in long-chain amphiphiles at the air/water interface: probing the head and tail groups by sum
frequency generation. J Phys Chem 98:13729–13734
