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90. Roy S, Hore D (2012) Simulated structure and nonlinear vibrational spectra of water next to
hydrophobic and hydrophilic solid surfaces. J Phys Chem C 116:22867–22877
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spectroscopy of water near lipid and surfactant monolayer interfaces. J Chem Phys
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JD, Smit WJ, Bakker HJ, Shultz MJ, Morita A, Donadio D, Nagata Y, Bonn M, Backus
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245
72. Ottosson N, Faubel M, Bradforth SE, Jungwirth P, Winter B (2010) Photoelectron
spectroscopy of liquid water and aqueous solution: electron effective attenuation lengths and
emission-angle anisotropy. J Elec Spec Rel Phen 177:60–70
73. Perry A, Ahlborn H, Space B, Moore PB (2003) A combined time correlation function
and instantaneous normal mode study of the sum frequency generation spectroscopy of the
water/vapor interface. J Chem Phys 118:8411–8419
74. Perry A, Neipert C, Kasprzyk CR, Green T, Space B, Moore PB (2005) A theoretical
description of the polarization dependence of the sum frequency generation spectroscopy of
the water/vapor interface. J Chem Phys 123:144705
75. Perry A, Neipert C, Ridley C, Space B, Moore PB (2005) Identification of a wagging
vibrational mode of water molecules at the water/vapor interface. Phys Rev E 71:050601
76. Perry A, Neipert C, Space B, Moore PB (2006) Theoretical modeling of interface specific
vibrational spectroscopy: methods and applications to aqueous interfaces. Chem Rev
106:1234–1258
77. Petersen PB, Saykally RJ (2006) On the nature of ions at the liquid water surface. Annu Rev
Phys Chem 57:333–364
78. Petersen MK, Iyengar SS, Day TJF, Voth GA (2004) The hydrated proton at the water
liquid/vapor interface. J Phys Chem B 108:14804–14806 (2004)
79. Petrenko VF, Whitworth RW (1999) Physics of ice. Oxford University Press, Oxford
80. Pieniazek PA, Tainter CJ, Skinner JL (2011) Interpretation of the water surface vibrational
sum-frequency spectrum. J Chem Phys 135:044701
81. Pieniazek PA, Tainter CJ, Skinner JL (2011) Surface of liquid water: three-body ineractions
and vibrational sum-frequency spectroscopy. J Am Chem Soc 133:10360–10363
82. Pohorille A, Wilson MA (1996) Excess chemical potential of small solutes across watermembrane and water-hexane interfaces. J Chem Phys 104:3760–3773
83. Radüge C, Pflumio V, Shen YR (1997) Surface vibrational spectroscopy of sulfuric acid-water
mixtures at the liquid-vapor interface. Chem Phys Lett 274:140–144
84. Randles JEB (1977) Structure at the free surface of water and aqueous electrolyte solutions.
Phys Chem Liq 7:107–179
85. Raymond EA, Richmond GL (2004) Probing the molecular structure and bonding of the
surface of aqueous salt solutions. J Phys Chem B 108:5051–5059
86. Re S, Nishima W, Tahara T, Sugita Y (2014) Mosaic of water orientation structures at a
neutral zwitterionic lipid/water interface revealed by molecular dynamics simulations. J Phys
Chem Lett 5:4343–4348
87. Reddy SK, Thiraux R, Rudd BAW, Lin L, Adel T, Joutsuka T, Geiger FM, Allen HC, Morita
A, Paesani F (2018) Bulk contributions modulate the sum-frequency generation spectra of
interfacial water on model sea-spray aerosols. Chem. https://doi.org/10.1016/j.chempr.2018.
04.007
88. Richmond GL (2002) Molecular bonding and interactions at aqueous surfaces as probed by
vibrational sum frequency spectroscopy. Chem Rev 102:2693–2724
89. Richmond GL (ed) (2014) Special section: aqueous interfaces. Chem Rev 114:8361–8498
90. Roy S, Hore D (2012) Simulated structure and nonlinear vibrational spectra of water next to
hydrophobic and hydrophilic solid surfaces. J Phys Chem C 116:22867–22877
91. Roy S, Gruenbaum SM, Skinner JL (2014) Theoretical vibrational sum-frequency generation
spectroscopy of water near lipid and surfactant monolayer interfaces. J Chem Phys
141:18C502
92. Sánchez MA, Kling T, Ishiyama T, van Zadel M-J, Bisson PJ, Mezger M, Jochum MN, Cyran
JD, Smit WJ, Bakker HJ, Shultz MJ, Morita A, Donadio D, Nagata Y, Bonn M, Backus
EHG (2017) Experimental and theoretical evidence for bilayer-by-bilayer surface melting of
crystalline ice. Proc Natl Acad Sci 114:227–232
93. Shen YR, Ostroverkhov V (2006) Sum-frequency vibrational spectroscopy on water
interfaces: polar orientation of water molecules at interfaces. Chem Rev 106:1140–1154
