25. V.P. Bulychev, K.M. Bulanin, M.O. Bulanin, Theoretical study of the Spectral and structural
parameters of van der Waals complexes of the Li
+ cation with the H 2 , D 2 , and T 2
isotopomers of the hydrogen molecule. Opt. Spectrosc. 96(2), 205–216 (2004)
26. F. Wang, F.R.W. McCourt, R.J. Le Roy, Dipole moment surfaces and the mid- and far-IR
spectra of N 2 -Ar. J. Chem. Phys. 113(1), 98–106 (2000)
27. F. Wang, F.R.W. McCourt, R.J. Le Roy, Use of simulated infrared spectra to test N 2 -Ar pair
potentials and dipole moment surfaces. Molec. Phys. 88(3), 821–840 (1996)
28. A.L. Cooksy, M.J. Elrod, R.J. Saykally, W. Klemperer, Dipole moment analysis of excited
van der Waals vibrational states of ArH
35
Cl. J. Chem. Phys. 99(5), 3200–3204 (1993)
29. A.G. Ayllon, J. Santamaria, S. Miller, J. Tennyson, Calculated spectra for N 2 -Ar van der
Waals complex. Molec. Phys. 71(5), 1043–1054 (1990)
30. W. Meyer, L. Frommhold, Collision-induced rototranslational spectra of H 2 -He from an
accurate ab initio dipole moment surface. Phys. Rev. A 34(4), 2771–2779 (1986)
31. Y.N. Kalugina, S.E. Lokshtanov, V.N. Cherepanov, A.A. Vigasin, Ab initio 3D potential
energy and dipole moment surfaces for the CH4–Ar complex: collision-induced intensity
and dimer content. J. Chem. Phys. 144(5), 054304 (2016)
32. L. Frommhold, in Collision-Induced Absorption in Gases (Cambridge University Press,
Cambridge, 1993)
33. Weakly interacting molecular pairs: Unconventional absorbers of radiation in the
atmosphere. NATO Science Series. IV. Earth and Environmental Sciences, vol. 27, eds.
by C. Camy-Preyt, A. Vigasin; A. Vigasin and Z. Slanina, Molecular Complexes in Earth’s
Planetary, Cometary and Interstellar Atmospheres (World Scientific Publishing, 1998)
34. M. Afshari, M. Dehghany, J. Norooz Oliaee, N. Moazzen-Ahmadi, Infrared spectra of the
OCS–N 2 O complex and observation of a new isomer. Chem. Phys. Lett. 489(1–3), 30
(2010)
35. A. Baranowska, B. Fernandez, A. Rizzo, B. Jansik, The CO–Ne van der Waals complex:
ab initio intermolecular potential energy, interaction induced electric dipole moment and
polarizability surfaces, and second viral coefficients. Phys. Chem. Chem. Phys. 11, 9871
(2009)
36. T. Bancewicz, G. Maroulis, Rotationally adapted studies of ab initio–computed
collision-induced hyperpolarizabilities: The H 2 -Ar pair. Phys. Rev A 79, 042704 (2009)
37. X. Li, K.L.C. Hunt, F. Wang, M. Abel, L. Frommhold, Collision-induced infrared
absorption by molecular hydrogen pairs at thousands of Kelvin. Int. J. Spectrosc. 2010,
371201 (2009)
38. K. Didriche, C. Lauzin, P. Macko, M. Herman, W.J. Lafferty, Observation of the C 2 H 2 −N 2 O
van der Waals complex in the overtone range using CW-CRDS. Chem. Phys. Lett. 469(1–3),
35 (2009)
39. P. Macko, C. Lauzin, M. Herman, High resolution spectroscopy of the 2CH band in the
12
C 2 H 2 –Ar van der Waals complex. Chem. Phys. Lett. 445(4–6), 113 (2007)
40. Q. Wen, W. Jäger, Microwave and ab initio studies of the Xe–CH 4 van der Waals complex.
J. Chem. Phys. 124(1), 014301 (2006)
41. W.C. Topic, W. Jäger, The weakly bound He–HCCCN complex: high-resolution microwave
spectra and intermolecular potential-energy surface. J. Chem. Phys. 123(6), 064303 (2005)
42. W.M. Fawzy, G. Kerenskaya, M.C. Heaven, Experimental detection and theoretical
characterization of the H 2 –NH(X) van der Waals complex. J. Chem. Phys. 122(14), 144318
(2005)
43. Y. Liu, W. Jäger, Microwave and ab initio studies of rare gas–methane van der Waals
complexes. J. Chem. Phys. 120(19), 9047 (2004)
44. Y. Liu, W. Jäger, Microwave investigation of the CO-CH 4 van der Waals complex. J. Chem.
Phys. 121(13), 6240 (2004)
45. F. Raulin, D. Mourey, G. Toupance, Organic syntheses from CH 4 -N 2 atmospheres:
implications for Titan. Orig. Life. 12(3), 267–279 (1982)
46. A. Coustenis, F.W. Taylor, in Titan: Exploring an Earthlike World (World Scientific
Publishing Co. Pte. Ltd., 2008)
46
3 Interaction-induced Dipole Moment
parameters of van der Waals complexes of the Li
+ cation with the H 2 , D 2 , and T 2
isotopomers of the hydrogen molecule. Opt. Spectrosc. 96(2), 205–216 (2004)
26. F. Wang, F.R.W. McCourt, R.J. Le Roy, Dipole moment surfaces and the mid- and far-IR
spectra of N 2 -Ar. J. Chem. Phys. 113(1), 98–106 (2000)
27. F. Wang, F.R.W. McCourt, R.J. Le Roy, Use of simulated infrared spectra to test N 2 -Ar pair
potentials and dipole moment surfaces. Molec. Phys. 88(3), 821–840 (1996)
28. A.L. Cooksy, M.J. Elrod, R.J. Saykally, W. Klemperer, Dipole moment analysis of excited
van der Waals vibrational states of ArH
35
Cl. J. Chem. Phys. 99(5), 3200–3204 (1993)
29. A.G. Ayllon, J. Santamaria, S. Miller, J. Tennyson, Calculated spectra for N 2 -Ar van der
Waals complex. Molec. Phys. 71(5), 1043–1054 (1990)
30. W. Meyer, L. Frommhold, Collision-induced rototranslational spectra of H 2 -He from an
accurate ab initio dipole moment surface. Phys. Rev. A 34(4), 2771–2779 (1986)
31. Y.N. Kalugina, S.E. Lokshtanov, V.N. Cherepanov, A.A. Vigasin, Ab initio 3D potential
energy and dipole moment surfaces for the CH4–Ar complex: collision-induced intensity
and dimer content. J. Chem. Phys. 144(5), 054304 (2016)
32. L. Frommhold, in Collision-Induced Absorption in Gases (Cambridge University Press,
Cambridge, 1993)
33. Weakly interacting molecular pairs: Unconventional absorbers of radiation in the
atmosphere. NATO Science Series. IV. Earth and Environmental Sciences, vol. 27, eds.
by C. Camy-Preyt, A. Vigasin; A. Vigasin and Z. Slanina, Molecular Complexes in Earth’s
Planetary, Cometary and Interstellar Atmospheres (World Scientific Publishing, 1998)
34. M. Afshari, M. Dehghany, J. Norooz Oliaee, N. Moazzen-Ahmadi, Infrared spectra of the
OCS–N 2 O complex and observation of a new isomer. Chem. Phys. Lett. 489(1–3), 30
(2010)
35. A. Baranowska, B. Fernandez, A. Rizzo, B. Jansik, The CO–Ne van der Waals complex:
ab initio intermolecular potential energy, interaction induced electric dipole moment and
polarizability surfaces, and second viral coefficients. Phys. Chem. Chem. Phys. 11, 9871
(2009)
36. T. Bancewicz, G. Maroulis, Rotationally adapted studies of ab initio–computed
collision-induced hyperpolarizabilities: The H 2 -Ar pair. Phys. Rev A 79, 042704 (2009)
37. X. Li, K.L.C. Hunt, F. Wang, M. Abel, L. Frommhold, Collision-induced infrared
absorption by molecular hydrogen pairs at thousands of Kelvin. Int. J. Spectrosc. 2010,
371201 (2009)
38. K. Didriche, C. Lauzin, P. Macko, M. Herman, W.J. Lafferty, Observation of the C 2 H 2 −N 2 O
van der Waals complex in the overtone range using CW-CRDS. Chem. Phys. Lett. 469(1–3),
35 (2009)
39. P. Macko, C. Lauzin, M. Herman, High resolution spectroscopy of the 2CH band in the
12
C 2 H 2 –Ar van der Waals complex. Chem. Phys. Lett. 445(4–6), 113 (2007)
40. Q. Wen, W. Jäger, Microwave and ab initio studies of the Xe–CH 4 van der Waals complex.
J. Chem. Phys. 124(1), 014301 (2006)
41. W.C. Topic, W. Jäger, The weakly bound He–HCCCN complex: high-resolution microwave
spectra and intermolecular potential-energy surface. J. Chem. Phys. 123(6), 064303 (2005)
42. W.M. Fawzy, G. Kerenskaya, M.C. Heaven, Experimental detection and theoretical
characterization of the H 2 –NH(X) van der Waals complex. J. Chem. Phys. 122(14), 144318
(2005)
43. Y. Liu, W. Jäger, Microwave and ab initio studies of rare gas–methane van der Waals
complexes. J. Chem. Phys. 120(19), 9047 (2004)
44. Y. Liu, W. Jäger, Microwave investigation of the CO-CH 4 van der Waals complex. J. Chem.
Phys. 121(13), 6240 (2004)
45. F. Raulin, D. Mourey, G. Toupance, Organic syntheses from CH 4 -N 2 atmospheres:
implications for Titan. Orig. Life. 12(3), 267–279 (1982)
46. A. Coustenis, F.W. Taylor, in Titan: Exploring an Earthlike World (World Scientific
Publishing Co. Pte. Ltd., 2008)
46
3 Interaction-induced Dipole Moment
