102
2 The Interaction of Electromagnetic Waves with Water
42. V.G. Artemov, E. Uykur, S. Roh, A.V. Pronin, H. Ouerdane, M. Dressel, Revealing excess
protons in the infrared spectrum of liquid water. Sci. Rep. 10, 11320–9 (2020)
43. C. Bai, J. Herzfeld, Special Pairs Are Decisive in the Autoionization and Recombination of
Water. J. Phys. Chem. B. 121, 4213–4219 (2017)
44. F. Perakis, L. De Marco, A. Shalit, F. Tang, Z.R. Kann, T.D. Kühne, R. Torre, M. Bonn, Y.
Nagata, Vibrational spectroscopy and dynamics of water. Chem. Rev. 116, 7590–7607 (2016)
45. C.H. Townes, A.L. Schawlow, Microwave Spectroscopy (Dover Publications, New York,
2013)
46. B.M. Auer, J.L. Skinner, Water: hydrogen bonding and vibrational spectroscopy, in the bulk
liquid and at the liquid/vapor interface. Chem. Phys. Lett 470, 13–20 (2009)
47. A.A. Kananenka, J.L. Skinner, Fermi resonance in OH-stretch vibrational spectroscopy of
liquid water and the water hexamer. J. Chem. Phys. 148, 244107–13 (2018)
48. D. Eisenberg, W. Kauzmann, The Structure and Properties of Water (Oxford University Press,
Oxford, 1969)
49. W.C. Röntgen, Ueber die Constitution des flüssigen Wassers. Ann. Phys. 281, 91–97 (1892)
50. G.E. Walrafen, Raman spectral studies of the effects of temperature on water structure. J.
Chem. Phys. 47, 114–126 (1967)
51. W.F. Murphy, H.J. Bernstein, Raman spectra and an assignment of the vibrational stretching
region of water. J. Phys. Chem. 76, 1147–1152 (1972)
52. W.B. Monosmith, G.E. Walrafen, Temperature dependence of the Raman OH-stretching overtone from liquid water. J. Chem. Phys. 81, 669–674 (1984)
53. D.A. Schmidt, K. Miki, Structural correlations in liquid water: a new interpretation of IR
spectroscopy. J. Phys. Chem. A. 111, 10119–10122 (2007)
54. C.S. Choe, J. Lademann, M.E. Darvin, Depth profiles of hydrogen bound water molecule
types and their relation to lipid and protein interaction in the human stratum corneum in vivo.
Analyst 141, 6329–6337 (2016)
55. P.L. Geissler, Temperature dependence of inhomogeneous broadening: on the meaning of
isosbestic points. J. Am. Chem. Soc. 127, 14930–14935 (2005)
56. B.M. Auer, J.L. Skinner, IR and Raman spectra of liquid water: theory and interpretation. J.
Chem. Phys. 128, 224511–12 (2008)
57. J.D. Smith, C.D. Cappa, K.R. Wilson, R.C. Cohen, P.L. Geissler, R.J. Saykally, Unified
description of temperature-dependent hydrogen-bond rearrangements in liquid water. PNAS
102, 14171–14174 (2005)
58. M. Falk, T.A. Ford, Infrared spectrum and structure of liquid water. Can. J. Chem. 44, 1699–
1707 (1966)
59. Y. Maréchal, Infrared spectra of water. I. Effect of temperature and of H/D isotopic dilution.
J. Chem. Phys. 95, 5565–5573 (1991)
60. J.J. Max, C. Chapados, Isotope effects in liquid water by infrared spectroscopy. J. Chem.
Phys. 116, 4626–4642 (2002)
61. G.E. Walrafen, Raman spectral studies of water structure. J. Chem. Phys. 40, 3249–3256
(1964)
62. K. Abe, T. Shigenari, Raman spectra of proton ordered phase XI of ICE I. Translational
vibrations below 350 cm −1 . J. Chem. Phys. 134, 104506–11 (2011)
63. J.M. Headrick, E.G. Diken, R.S. Walters, N.I. Hammer, R.A. Christie, J. Cui, E.M. Myshakin,
M.A. Duncan, M.A. Johnson, K.D. Jordan, Spectral signatures of hydrated proton vibrations
in water clusters. Science 308, 1765–9 (2005)
64. W. Kulig, N. Agmon, A ‘clusters-in-liquid’ method for calculating infrared spectra identifies
the proton-transfer mode in acidic aqueous solutions. Nat. Chem. 5, 29–35 (2013)
65. H.R. Zelsmann, Temperature dependence of the optical constants for liquid H 2 O and D 2 O in
the far IR region. J. Mol. Struct. 350, 95–114 (1995)
66. D.C. Elton, M. Fernandez-Serra, The hydrogen-bond network of water supports propagating
optical phonon-like modes. Nat. Commun. 7, 10193–8 (2016)
67. R. Buchner, J. Barthel, J. Stauber, The dielectric relaxation of water between 0 ◦ C and 35 ◦ C.
Chem. Phys. Lett. 306, 57–63 (1999)
2 The Interaction of Electromagnetic Waves with Water
42. V.G. Artemov, E. Uykur, S. Roh, A.V. Pronin, H. Ouerdane, M. Dressel, Revealing excess
protons in the infrared spectrum of liquid water. Sci. Rep. 10, 11320–9 (2020)
43. C. Bai, J. Herzfeld, Special Pairs Are Decisive in the Autoionization and Recombination of
Water. J. Phys. Chem. B. 121, 4213–4219 (2017)
44. F. Perakis, L. De Marco, A. Shalit, F. Tang, Z.R. Kann, T.D. Kühne, R. Torre, M. Bonn, Y.
Nagata, Vibrational spectroscopy and dynamics of water. Chem. Rev. 116, 7590–7607 (2016)
45. C.H. Townes, A.L. Schawlow, Microwave Spectroscopy (Dover Publications, New York,
2013)
46. B.M. Auer, J.L. Skinner, Water: hydrogen bonding and vibrational spectroscopy, in the bulk
liquid and at the liquid/vapor interface. Chem. Phys. Lett 470, 13–20 (2009)
47. A.A. Kananenka, J.L. Skinner, Fermi resonance in OH-stretch vibrational spectroscopy of
liquid water and the water hexamer. J. Chem. Phys. 148, 244107–13 (2018)
48. D. Eisenberg, W. Kauzmann, The Structure and Properties of Water (Oxford University Press,
Oxford, 1969)
49. W.C. Röntgen, Ueber die Constitution des flüssigen Wassers. Ann. Phys. 281, 91–97 (1892)
50. G.E. Walrafen, Raman spectral studies of the effects of temperature on water structure. J.
Chem. Phys. 47, 114–126 (1967)
51. W.F. Murphy, H.J. Bernstein, Raman spectra and an assignment of the vibrational stretching
region of water. J. Phys. Chem. 76, 1147–1152 (1972)
52. W.B. Monosmith, G.E. Walrafen, Temperature dependence of the Raman OH-stretching overtone from liquid water. J. Chem. Phys. 81, 669–674 (1984)
53. D.A. Schmidt, K. Miki, Structural correlations in liquid water: a new interpretation of IR
spectroscopy. J. Phys. Chem. A. 111, 10119–10122 (2007)
54. C.S. Choe, J. Lademann, M.E. Darvin, Depth profiles of hydrogen bound water molecule
types and their relation to lipid and protein interaction in the human stratum corneum in vivo.
Analyst 141, 6329–6337 (2016)
55. P.L. Geissler, Temperature dependence of inhomogeneous broadening: on the meaning of
isosbestic points. J. Am. Chem. Soc. 127, 14930–14935 (2005)
56. B.M. Auer, J.L. Skinner, IR and Raman spectra of liquid water: theory and interpretation. J.
Chem. Phys. 128, 224511–12 (2008)
57. J.D. Smith, C.D. Cappa, K.R. Wilson, R.C. Cohen, P.L. Geissler, R.J. Saykally, Unified
description of temperature-dependent hydrogen-bond rearrangements in liquid water. PNAS
102, 14171–14174 (2005)
58. M. Falk, T.A. Ford, Infrared spectrum and structure of liquid water. Can. J. Chem. 44, 1699–
1707 (1966)
59. Y. Maréchal, Infrared spectra of water. I. Effect of temperature and of H/D isotopic dilution.
J. Chem. Phys. 95, 5565–5573 (1991)
60. J.J. Max, C. Chapados, Isotope effects in liquid water by infrared spectroscopy. J. Chem.
Phys. 116, 4626–4642 (2002)
61. G.E. Walrafen, Raman spectral studies of water structure. J. Chem. Phys. 40, 3249–3256
(1964)
62. K. Abe, T. Shigenari, Raman spectra of proton ordered phase XI of ICE I. Translational
vibrations below 350 cm −1 . J. Chem. Phys. 134, 104506–11 (2011)
63. J.M. Headrick, E.G. Diken, R.S. Walters, N.I. Hammer, R.A. Christie, J. Cui, E.M. Myshakin,
M.A. Duncan, M.A. Johnson, K.D. Jordan, Spectral signatures of hydrated proton vibrations
in water clusters. Science 308, 1765–9 (2005)
64. W. Kulig, N. Agmon, A ‘clusters-in-liquid’ method for calculating infrared spectra identifies
the proton-transfer mode in acidic aqueous solutions. Nat. Chem. 5, 29–35 (2013)
65. H.R. Zelsmann, Temperature dependence of the optical constants for liquid H 2 O and D 2 O in
the far IR region. J. Mol. Struct. 350, 95–114 (1995)
66. D.C. Elton, M. Fernandez-Serra, The hydrogen-bond network of water supports propagating
optical phonon-like modes. Nat. Commun. 7, 10193–8 (2016)
67. R. Buchner, J. Barthel, J. Stauber, The dielectric relaxation of water between 0 ◦ C and 35 ◦ C.
Chem. Phys. Lett. 306, 57–63 (1999)
