246
9 Applications: Aqueous Interfaces
94. Shultz MJ, Schnitzer C, Simonelli D, Baldelli S (2000) Sum frequency generation
spectroscopy of the aqueous interfaces: ionic and soluble molecular solutions. Int Rev Phys
Chem 19:123–153
95. Shultz MJ, Bisson P, Groenzin H, Li I (2010) Multiplexed polarization spectroscopy:
measuring surface hyperpolarizability orientation. J Chem Phys 133:054702
96. Skinner JL, Pieniazek PA, Gruenbaum SM (2012) Vibrational spectroscopy of water at
interfaces. Acc Chem Res 45:93–100
97. Smit WJ, Tang F, Nagata Y, Sánchez MA, Hasegawa T, Backus EHG, Bonn M, Bakker HJ
(2017) Observation and identification of a new oh stretch vibrational band at the surface of
ice. J Phys Chem Lett 8:3656–3660
98. Sovago M, Campen RK, Wurpel GWH, Müller M, Bakker HJ, Bonn M (2008) Vibrational
response of hydrogen-bonded interfacial watger is dominated by intramolecular coupling.
Phys Rev Lett 100:173901
99. Sovago M, Campen RK, Bakker HJ, Bonn M (2009) Hydrogen bonding strength of interfacial
water determined with surface sum-frequency generation. Chem Phys Lett 470:7–12
100. Steel WH, Walker RA (2003) Measuring dipolar width across liquid-liquid interfaces with
‘molecular rulers’. Nature 424:296–299
101. Steel WH, Walker RA (2003) Solvent polarity at an aqueous/alkane interface: the effect of
solute identity. J Am Chem Soc 125:1132–1133
102. Su X, Lianos L, Shen YR, Somorjai GA (1998) Surface-induced ferroelectric ice on Pt(111).
Phys Rev Lett 80:1533–1536
103. Sulpizi M, Salanne M, Sprik M, Gaigeot M (2013) Vibrational sum frequency generation
spectroscopy of the water liquid.vapor interface from density functional theory-based molecular dynamics simulations. J Phys Chem Lett 4:83–87
104. Tarbuck TL, Ota ST, Richmond GL (2006) Spectroscopic studies of solvated hydrogen and
hydroxidde ions at aqueous surfaces. J Am Chem Soc 128:14519–14527
105. Tian C-S, Shen YR (2009) Isotopic dilution study of the water/vapor interface by phasesensitive sum-frequency vibrational spectroscopy. J Am Chem Soc 131:2790–2791
106. Tian CS, Ji N, Waychunas GA, Shen YR (2008) Interfacial structures of acidic and basic
aqueous solutions. J Am Chem Soc 130:13033–13039
107. Verreault D, Hua W, Allen HC (2012) From conventional to phase-sensitive vibrational sum
frequency generation spectroscopy: probing water organization at aqueous interfaces. J Phys
Chem Lett 3:3012–3028
108. Vinaykin M, Benderskii AV (2012) Vibrational sum-frequency spectrum of the water bend at
the air/water interface. J Phys Chem Lett 3:3348–3352
109. Walker DS, Richmond GL (2007) Depth profiling of water molecules at the liquidliquid interface using a combined surface vibrational spectroscopy and molecular dynamics
approach. J Am Chem Soc 129:9446–9451
110. Walker DS, Richmond GL (2007) Understanding the effects of hydrogen bonding at the
vapor-water interface: vibrational sum frequency spectroscopy of H 2 O/HOD/D 2 O mixtures
studied using molecular dynamics simultions. J Phys Chem C 111:8321–8330
111. Walker DS, Moore FG, Richmond GL (2007) Vibrational sum frequency spectroscopy and
molecular dynamics simulation of the carbon tetrachloride-water and 1,2-dichloroethanewater interfaces. J Phys Chem C 111:6103–6112
112. Wan Q, Galli G (2015) First-principles framework to compute sum-frequency generation
vibrational spectra of semiconductors and insulators. Phys Rev Lett 115:246404
113. Wei X, Miranda PB, Shen YR (2001) Surface vibrational spectroscopic study of surface
melting of ice. Phys Rev Lett 86:1554–1557
114. Yamaguchi S (2015) Development of single-channel heterodyne-detected sum frequency
generation spectroscopy and its application to the water/vapor interface. J Chem Phys
143:034202
115. Zhang Y, Cremer PS (2010) Chemistry of hofmeister anions and osmolytes. Annu Rev Phys
Chem 61:63–83
9 Applications: Aqueous Interfaces
94. Shultz MJ, Schnitzer C, Simonelli D, Baldelli S (2000) Sum frequency generation
spectroscopy of the aqueous interfaces: ionic and soluble molecular solutions. Int Rev Phys
Chem 19:123–153
95. Shultz MJ, Bisson P, Groenzin H, Li I (2010) Multiplexed polarization spectroscopy:
measuring surface hyperpolarizability orientation. J Chem Phys 133:054702
96. Skinner JL, Pieniazek PA, Gruenbaum SM (2012) Vibrational spectroscopy of water at
interfaces. Acc Chem Res 45:93–100
97. Smit WJ, Tang F, Nagata Y, Sánchez MA, Hasegawa T, Backus EHG, Bonn M, Bakker HJ
(2017) Observation and identification of a new oh stretch vibrational band at the surface of
ice. J Phys Chem Lett 8:3656–3660
98. Sovago M, Campen RK, Wurpel GWH, Müller M, Bakker HJ, Bonn M (2008) Vibrational
response of hydrogen-bonded interfacial watger is dominated by intramolecular coupling.
Phys Rev Lett 100:173901
99. Sovago M, Campen RK, Bakker HJ, Bonn M (2009) Hydrogen bonding strength of interfacial
water determined with surface sum-frequency generation. Chem Phys Lett 470:7–12
100. Steel WH, Walker RA (2003) Measuring dipolar width across liquid-liquid interfaces with
‘molecular rulers’. Nature 424:296–299
101. Steel WH, Walker RA (2003) Solvent polarity at an aqueous/alkane interface: the effect of
solute identity. J Am Chem Soc 125:1132–1133
102. Su X, Lianos L, Shen YR, Somorjai GA (1998) Surface-induced ferroelectric ice on Pt(111).
Phys Rev Lett 80:1533–1536
103. Sulpizi M, Salanne M, Sprik M, Gaigeot M (2013) Vibrational sum frequency generation
spectroscopy of the water liquid.vapor interface from density functional theory-based molecular dynamics simulations. J Phys Chem Lett 4:83–87
104. Tarbuck TL, Ota ST, Richmond GL (2006) Spectroscopic studies of solvated hydrogen and
hydroxidde ions at aqueous surfaces. J Am Chem Soc 128:14519–14527
105. Tian C-S, Shen YR (2009) Isotopic dilution study of the water/vapor interface by phasesensitive sum-frequency vibrational spectroscopy. J Am Chem Soc 131:2790–2791
106. Tian CS, Ji N, Waychunas GA, Shen YR (2008) Interfacial structures of acidic and basic
aqueous solutions. J Am Chem Soc 130:13033–13039
107. Verreault D, Hua W, Allen HC (2012) From conventional to phase-sensitive vibrational sum
frequency generation spectroscopy: probing water organization at aqueous interfaces. J Phys
Chem Lett 3:3012–3028
108. Vinaykin M, Benderskii AV (2012) Vibrational sum-frequency spectrum of the water bend at
the air/water interface. J Phys Chem Lett 3:3348–3352
109. Walker DS, Richmond GL (2007) Depth profiling of water molecules at the liquidliquid interface using a combined surface vibrational spectroscopy and molecular dynamics
approach. J Am Chem Soc 129:9446–9451
110. Walker DS, Richmond GL (2007) Understanding the effects of hydrogen bonding at the
vapor-water interface: vibrational sum frequency spectroscopy of H 2 O/HOD/D 2 O mixtures
studied using molecular dynamics simultions. J Phys Chem C 111:8321–8330
111. Walker DS, Moore FG, Richmond GL (2007) Vibrational sum frequency spectroscopy and
molecular dynamics simulation of the carbon tetrachloride-water and 1,2-dichloroethanewater interfaces. J Phys Chem C 111:6103–6112
112. Wan Q, Galli G (2015) First-principles framework to compute sum-frequency generation
vibrational spectra of semiconductors and insulators. Phys Rev Lett 115:246404
113. Wei X, Miranda PB, Shen YR (2001) Surface vibrational spectroscopic study of surface
melting of ice. Phys Rev Lett 86:1554–1557
114. Yamaguchi S (2015) Development of single-channel heterodyne-detected sum frequency
generation spectroscopy and its application to the water/vapor interface. J Chem Phys
143:034202
115. Zhang Y, Cremer PS (2010) Chemistry of hofmeister anions and osmolytes. Annu Rev Phys
Chem 61:63–83
