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Publicly Available Published by De Gruyter August 6, 2010

Hydrated metal ions in aqueous solution: How regular are their structures?

  • Ingmar Persson

The hydration reaction is defined as the transfer of an ion or neutral chemical species from the gaseous phase into water, Mn+(g) → Mn+(aq). In this process, water molecules bind to metal ions through ion-dipole bonds of mainly electrostatic character. The hydration reaction is always strongly exothermic with increasing heat of hydration with increasing charge density of the ion. The structures of the hydrated metal ions in aqueous solution display a variety of configurations depending on the size and electronic properties of the metal ion. The basic configurations of hydrated metal ions in aqueous solution are tetrahedral, octahedral, square antiprismatic, and tricapped trigonal prismatic. This paper gives an overview of the structures of hydrated metal ions in aqueous solution with special emphasis on those with a non-regular coordination figure. Metal ions without d-electrons in the valance shell form regular aqua complexes with a coordination figure, allowing a maximum number of water molecules to be clustered around the metal ion. This number is dependent on the ratio of the metal ion radius to the atomic radius of oxygen in a coordinated water molecule (1.34 Å). The lighter lanthanoid(III) ions have a regular tricapped trigonal prismatic configuration with the M–O distance to the capping water molecules somewhat longer than to the prismatic ones. However, with increasing atomic number of the lanthanoid(III) ions, an increasing distortion of the capping water molecules is observed, resulting in a partial loss of water molecules in the capping positions for the heaviest lanthanoids. Metal ions with d4 and d9 valance shell electron configuration, as chromium(II) and copper(II), respectively, have Jahn–Teller distorted aqua complexes. Metal ions with low charge and ability to form strong covalent bonds, as silver(I), mercury(II), palladium(II), and platinum(II), often display distorted coordination figures due to the second-order Jahn–Teller effect. Metal ions with d10s2 valence shell electron configuration may have a stereochemically active lone electron pair (hemi-directed complexes) or an inactive one (holo-directed). The hydrated tin(II), lead(II), and thallium(I) ions are hemi-directed in aqueous solution, while the hydrated bismuth(III) ion is holo-directed. The structures of the hydrated cationic oxo-metal ions are reported as well.


Conference

International Conference on Solution Chemistry (ICSC-31), International Conference on Solution Chemistry, ICSC, Solution Chemistry, 31st, Innsbruck, Austria, 2009-08-21–2009-08-25


References

1 10.1021/cr60236a004, D. R. Rosseinsky. Chem. Rev.65, 467 (1965).Search in Google Scholar

2 C. G. Phillips, R. J. P. Williams. Inorganic Chemistry, Vol. 1, p. 161, Clarendon Press, New York (1965).Search in Google Scholar

3 10.1021/ja00905a001, R. G. Pearson. J. Am. Chem. Soc.85, 3533 (1963).Search in Google Scholar

4 10.1039/dt9810002105, J. K. Beattie, S. P. Best, B. W. Skelton, A. H. White. J. Chem. Soc., Dalton Trans. 2105 (1981).Search in Google Scholar

5 10.1021/ic100034q, D. Lundberg, I. Persson, L. Eriksson, P. D’Angelo, S. De Panfilis. Inorg. Chem.49, 4420 (2010).Search in Google Scholar

6 10.1021/jo00002a030, R. Ireland, P. Wipf, J. Armstrong. J. Org. Chem.56, 650 (1991).Search in Google Scholar

7 10.1021/ic000022m, J. Näslund, I. Persson, M. Sandström. Inorg. Chem.39, 4012 (2000).Search in Google Scholar

8 Inorganic Crystal Structure Database 1.4.6, Release 2009-1, FIZ Karlsruhe (2009).Search in Google Scholar

9a 10.1107/S0108768102003890, F. H. Allen. Acta Crystallogr., Sect. B58, 380 (2002).Search in Google Scholar

9b Cambridge Structure Database, Release 2008.Search in Google Scholar

10 10.1021/cr00019a014, H. Ohtaki, T. Radnai. Chem. Rev.93, 1157 (1993) and refs. therein.Search in Google Scholar

11 10.1016/S0898-8838(08)60260-3, G. Johansson. Adv. Inorg. Chem.39, 159 (1992) and refs. therein.Search in Google Scholar

12 I. Persson. Unpublished data.Search in Google Scholar

13 10.1021/ic030310t, P. D’Angelo, I. Persson. Inorg. Chem.43, 3543 (2004).Search in Google Scholar PubMed

14 T. Yamaguchi, H. Ohtaki, E. Spohr, G. Palinkas, K. Heinzinger, M. Probst. Z. Naturforsch., A41, 1175 (1986).10.1515/zna-1986-1001Search in Google Scholar

15 10.1021/ja001533a, F. Jalilehvand, D. Spångberg, P. Lindqvist-Reis, K. Hermansson, I. Persson, M. Sandström. J. Am. Chem. Soc.123, 431 (2001).Search in Google Scholar

16 I. Persson, M. Sandström, H. Yokoyama, M. Chaudhry. Z. Naturforsch., A50, 21 (1995).10.1515/zna-1995-0105Search in Google Scholar

17 10.1002/chem.200401339, A. Abbasi, P. Lindqvist-Reis, L. Eriksson, D. Sandström, S. Lidin, I. Persson, M. Sandström. Chem.—Eur. J.11, 4065 (2005).Search in Google Scholar

18 10.1039/b604267h, P. Lindqvist-Reis, I. Persson, M. Sandström. Dalton Trans. 3868 (2006).Search in Google Scholar

19 10.1021/jp992101t, P. Lindqvist-Reis, K. Lamble, S. Pattanaik, M. Sandström, I. Persson. J. Phys. Chem. B104, 402 (2000).Search in Google Scholar

20 10.1021/ic991208s, J. Näslund, P. Lindqvist-Reis, S. Pattanaik, M. Sandström, I. Persson. Inorg. Chem.39, 4006 (2000).Search in Google Scholar

21 10.1021/ja00159a012, H. Tachikawa, T. Ichikawa, H. Yoshida. J. Am. Chem. Soc.112, 977 (1990).Search in Google Scholar

22 10.1039/b402804j, C. Hagfeldt, V. Kessler, I. Persson. Dalton Trans. 2142 (2004).Search in Google Scholar

23 10.1016/S0009-2614(02)01209-5, H. Loeffler, J. Iglesias Yagüe, B. M. Rode. Chem. Phys. Lett.363, 367 (2002).Search in Google Scholar

24 10.1246/cl.1988.1073, T. Miyanaga, I. Watanabe, S. Ikeda. Chem. Lett. 1073 (1988).Search in Google Scholar

25 10.1021/ja00342a025, S. P. Cramer, P. K. Eidem, M. T. Pafett, J. R. Winkler, Z. Dori, H. B. Gray. J. Am. Chem. Soc.105, 799 (1983).Search in Google Scholar

26 10.1021/ic980750y, P. Lindqvist-Reis, S. Diaz-Moreno, A. Munoz-Páez, S. Pattanaik, I. Persson, M. Sandström. Inorg. Chem.37, 6675 (1998), and refs. therein.Search in Google Scholar PubMed

27 10.1021/ic00260a020, M. Brorson, M. Gajhede. Inorg. Chem.26, 2109 (1987).Search in Google Scholar

28 10.1016/j.ica.2006.09.014, D. Lundberg, A.-S. Ullström, P. D’Angelo, I. Persson. Inorg. Chim. Acta360, 1809 (2007).Search in Google Scholar

29 M. Taimisto, R. Oilunkaniemi, R. S. Laitinen, M. Ahlgren. Z. Naturforsch., B58, 959 (2003).Search in Google Scholar

30 10.1039/dt9900003507, S. P. Best, J. Bruce Forsyth. J. Chem. Soc., Dalton Trans. 3507 (1990).Search in Google Scholar

31 10.1021/ic00141a016, P. Bernhard, H.-B. Bürgi, J. Hauser, H. Lehmann, A. Ludi. Inorg. Chem.21, 3936 (1982).Search in Google Scholar

32 10.1021/j100274a007, R. Caminiti, D. Atzei, P. Cucca, A. Anedda, G. Bongiovanni. J. Phys. Chem.90, 238 (1986).Search in Google Scholar

33 10.3891/acta.chem.scand.46-1177, M. C. Read, M. Sandström. Acta Chem. Scand.46, 1177 (1992).Search in Google Scholar

34 10.1039/dt9830001973, R. S. Armstrong, J. K. Beattie, S. P. Best, B. W. Skelton, A. H. White. J. Chem. Soc., Dalton Trans. 1973 (1983).Search in Google Scholar

35 10.1016/S0020-1693(02)01322-1, O. Kristiansson, I. Persson, D. Bobicz, D. Xu. Inorg. Chim Acta344, 15 (2003).Search in Google Scholar

36 10.1016/j.cplett.2007.08.009, T. S. Hofer, B. R. Randolf, A. Ali Shah, B. M. Rode, I. Persson. Chem. Phys Lett.445, 193 (2007).Search in Google Scholar

37 10.1002/cphc.200700435, E. C. Beret, R. R. Pappalardo, N. L. Doltsinis, D. Marx, E. S. Marcos. ChemPhysChem9, 237 (2008).Search in Google Scholar PubMed

38 J. Purans, B. Fourest, C. Cannes, V. Sladkov, F. David, L. Venault, M. Lecomte. J. Chem. Phys. B109, 11074 (2005).10.1021/jp045489nSearch in Google Scholar PubMed

39 10.1021/ic7022538, F. Jalilehvand, L. J. Laffin. Inorg. Chem.47, 3248 (2008).Search in Google Scholar PubMed

40 10.1039/b819248k, T. S. Hofer, B. R. Randolf, B. M. Rode, I. Persson. Dalton Trans. 1512 (2009).Search in Google Scholar PubMed

41 10.1021/ic00063a049, I. Persson, J. E. Penner-Hahn, K. O. Hodgson. Inorg. Chem.32, 2497 (1993).Search in Google Scholar

42 10.1039/b200698g, I. Persson, P. Persson, M. Sandström, A.-S. Ullström. J. Chem. Soc., Dalton Trans. 1256 (2002) and refs. therein.Search in Google Scholar

43 10.1063/1.2165189, J. Chaboy, A. Munoz-Paez, P. J. Merkling, E. S. Marcos. J. Chem. Phys.124, 064509 (2006).Search in Google Scholar PubMed

44 10.1021/jp804373p, V. S. Bryantsev, M. S. Diallo, A. C. T. van Duin, W. A. Goddard III. J. Phys. Chem. A112, 9104 (2008).Search in Google Scholar PubMed

45 10.1021/ic060636c, I. Persson, K. B. Nilsson. Inorg. Chem.45, 7428 (2006).Search in Google Scholar PubMed

46 10.1002/chem.200800225, I. Persson, L. Eriksson, P. Lindqvist-Reis, P. Persson, M. Sandström. Chem.—Eur. J.14, 6687 (2008).Search in Google Scholar PubMed

47 10.3891/acta.chem.scand.36a-0125, J. Glaser, G. Johansson. Acta Chem. Scand., Ser. A36a, 125 (1982).Search in Google Scholar

48 10.1021/ja00123a011, J. Blixt, J. Glaser, J. Mink, I. Persson, P. Persson, M. Sandström. J. Am. Chem. Soc.117, 5089 (1995).Search in Google Scholar

49 10.1021/ic010587y, I. Persson, F. Jalilehvand, M. Sandström. Inorg. Chem.41, 192 (2002).Search in Google Scholar PubMed

50 10.1002/chem.200701281, I. Persson, P. D’Angelo, S. De Panfilis, M. Sandström, L. Eriksson. Chem.—Eur. J.14, 3056 (2008) and refs. therein.Search in Google Scholar PubMed

51 P. D’Angelo, A. Zitalo, V. Migliorati, G. Mancini, I. Persson, G. Chillemi. Chem.—Eur. J.16 682 (2010).Search in Google Scholar

52 10.1021/ic9905953, P. G. Allen, J. J. Bucher, D. K. Shuh, N. M. Edelstein, I. Craig. Inorg. Chem.39, 595 (2000).Search in Google Scholar PubMed

53 10.1021/ic015509p, J. H. Matonic, B. L. Scott, M. P. Neu. Inorg. Chem.40, 2638 (2001).Search in Google Scholar PubMed

54 10.1002/anie.200603947, P. Lindqvist-Reis, C. Apostolidis, J. Rebizant, A. Morgenstern, R. Klenze, O. Walter, T. Fanghaenel, R. G. Haire. Angew. Chem., Int. Ed.46, 919 (2007).Search in Google Scholar PubMed

55 10.1021/ic061798b, S. Skanthakumar, M. R. Antonio, R. E. Wilson, L. Soderholm. Inorg. Chem.46, 3485 (2007).Search in Google Scholar PubMed

56 10.1021/ic901763s, N. Torapava, I. Persson, L. Eriksson, D. Lundberg. Inorg. Chem.48, 11712 (2009).Search in Google Scholar PubMed

57 10.1021/ic981362z, H. Moll, M. A. Denecke, F. Jalilehvand, M. Sandström, I. Grenthe. Inorg. Chem.38, 1795 (1999).Search in Google Scholar PubMed

58 10.1021/ic8009095, A. Ikeda-Ohno, C. Hennig, A. Rossberg, H. Fune, A. C. Scheinost, G. Bernhard, T. Yaita. Inorg. Chem.47, 8294 (2008).Search in Google Scholar PubMed

59 10.1021/ic970502m, P. G. Allen, J. J. Bucher, D. K. Shuh, N. M. Edelstein, T. Reich. Inorg. Chem.36, 4676 (1997).Search in Google Scholar PubMed

60 10.1021/ic0346477, S. D. Conradson, K. D. Abney, B. D. Begg, E. D. Brady, D. L. Clark, C. den Auwer, M. Ding, P. K. Dorhout, F. J. Espinosa-Faller, P. L. Gordon, R. G. Haire, N. J. Hess, R. F. Hess, D. W. Keogh, G. H. Lander, A. J. Lupinetti, L. A. Morales, M. P. Neu, P. D. Palmer, P. Paviet-Hartmann, S. D. Reilly, W. H. Runde, C. D. Tait, D. K. Veirs, F. Wastin. Inorg. Chem.43, 116 (2004).Search in Google Scholar PubMed

61 S. D. Conradson, D. L. Clark, M. P. Neu, W. H. Runde, C. D. Tait. Los Alamos Sci.26, 418 (2000).Search in Google Scholar

62 10.1021/ic00168a033, M. Åberg, D. Ferri, J. Glaser, I. Grenthe. Inorg. Chem.22, 3986 (1983).Search in Google Scholar

63a 10.1107/S0567739476001551, R. D. Shannon. Acta Crystallogr., Sect. A32, 751 (1976).Search in Google Scholar

63b 10.1107/S0567740869003220, R. D. Shannon, C. T. Prewitt. Acta Crystallogr., Sect. B25, 925 (1969).Search in Google Scholar

64 10.1021/jp0139639, G. Moreau, L. Helm, J. Purans, A. E. Merbach. J. Phys. Chem. A106, 3034 (2002).Search in Google Scholar

65 10.1107/S0567740874003499, J. Sygusch. Acta Crystallogr., Sect. B30, 662 (1974).Search in Google Scholar

66 10.1107/S0108270194010826, M. A. S. Aquino, W. Clegg, Q.-T. Liu, A. G. Sykes. Acta Crystallogr., Sect. C51, 560 (1995).Search in Google Scholar

67 10.1016/j.ica.2004.03.010, J. Rosdahl, I. Persson, L. Kloo, K. Ståhl. Inorg. Chim. Acta357, 2624 (2004).Search in Google Scholar

68 I. B. Bersuker. Electronic Structure and Properties of Transition Metal Compounds, Chaps. 7.3 and 9.4, Wiley-Interscience, New York (1996).Search in Google Scholar

69 10.1107/S1600536803014272, F. Bramsen, A. D. Bond, C. J. McKenzie. Acta Crystallogr., Sect. E59, i105 (2003).Search in Google Scholar

70 10.1016/S0020-1693(00)00074-8, R. Song, K. M. Kim, Y. S. Sohn. Inorg. Chim. Acta304, 156 (2000).Search in Google Scholar

71 10.1016/S0277-5387(00)80926-2, T. C. W. Mak, C. H. L. Kennard, G. Smith, E. J. O’Reilly, D. S. Sagatys, J. C. Fulwood. Polyhedron6, 855 (1987).Search in Google Scholar

72 10.1016/j.molstruc.2005.07.013, C. Yue, Z. Lin, L. Chen, F. Jiang, M. Hong. J. Mol. Struct.779, 16 (2005).Search in Google Scholar

73 10.1016/S0020-1693(99)00051-1, Y. Kajikawa, N. Azuma, K. Tajima. Inorg. Chim. Acta288, 90 (1999).Search in Google Scholar

74 10.1021/ic00027a021, O. Guillou, P. Bergerat, O. Kahn, E. Bakalbassis, K. Boubekeur, P. Batail, M. Guillot. Inorg. Chem.31, 110 (1992).Search in Google Scholar

75 10.1002/anie.200503096, V. Shivaiah, S. K. Das. Angew. Chem., Int. Ed.45, 245 (2006).Search in Google Scholar

76 10.1016/S0277-5387(00)80926-2, T. C. W. Mak, C. H. L. Kennard, G. Smith, E. J. O’Reilly, D. S. Sagatys, J. C. Fulwood. Polyhedron6, 855 (1987).Search in Google Scholar

77 10.1126/science.291.5505.856, A. Pasquarello, I. Petri, P. S. Salmon, O. Parisel, R. Car, E. Toth, D. H. Powell, H. F. Fischer, L. Helm, A. E. Merbach. Science291, 856 (2001).Search in Google Scholar

78 10.1103/PhysRevB.65.174205, M. Benfatto, P. D’Angelo, S. D. Longa, N. V. Pavel. Phys. Rev. B65, 174205 (2002).Search in Google Scholar

79 10.1021/ic0400639, P. Frank, M. Benfatto, R. K. Szilagyi, P. D’Angelo, S. D. Longa, K. O. Hodgson. Inorg. Chem.44, 1922 (2005).Search in Google Scholar

80 10.1107/S0567740873007491, S. Ray, A. Zalkin, D. H. Templeton. Acta Crystallogr., Sect. B29, 2748 (1973).Search in Google Scholar

81 10.1107/S0108270191005048, A. C. Blackburn, J. C. Gallucci, R. E. Gerkin. Acta Crystallogr., Sect. C47, 2019 (1991).Search in Google Scholar

82 10.1016/S0022-4596(05)80311-1, F. A. Cotton, L. R. Falvello, C. A. Murillo, J. F. Quesada. J. Solid State Chem.96, 192 (1992).Search in Google Scholar

83 10.1021/ic00074a033, M. A. Araya, F. A. Cotton, L. M. Daniels, L. R. Favello, C. A. Murillo. Inorg. Chem.32, 4853 (1993).Search in Google Scholar

84 10.1107/S0108768190005845, B. N. Figgis, E. S. Kucharski, P. A. Reynolds. Acta Crystallogr., Sect. B46, 577 (1990).Search in Google Scholar

85 10.3891/acta.chem.scand.32a-0109, G. Johansson, M. Sandström. Acta Chem. Scand., Ser. A32a, 109 (1978).Search in Google Scholar

86 10.1039/b206021n, A. Molla-Abbassi, L. Eriksson, P. Lindqvist-Reis, J. Mink, I. Persson, M. Sandström, M. Skripkin, A.-S. Ullström. J. Chem. Soc., Dalton Trans. 4357 (2002).Search in Google Scholar

87 10.1039/jr9580004186, L. E. Orgel. J. Chem. Soc. 4186 (1958).Search in Google Scholar

88 R. S. Nyholm. J. Chem. Soc., Proc. 273 (1961).Search in Google Scholar

89 I. B. Bersuker. The Jahn–Teller Effect and Vibronic Interactions in Modern Chemistry, Chaps. 1–5, Plenum, New York (1984).10.1007/978-1-4613-2653-3_1Search in Google Scholar

90 I. B. Bersuker, V. Z. Polinger. Vibronic Interactions in Molecules and Crystals, Chaps. 3 and 4, Springer-Verlag, Berlin (1989).10.1007/978-3-642-83479-0_1Search in Google Scholar

91 10.1016/0009-2614(90)87215-D, D. Strömberg, M. Sandström, U. Wahlgren. Chem. Phys. Lett.172, 49 (1990).Search in Google Scholar

92 10.1002/zaac.200300161, G. Meyer, P. Nockemann. Z. Anorg. Allg. Chem.629, 1447 (2003).Search in Google Scholar

93 10.3891/acta.chem.scand.38a-0437, T. Yamaguchi, G. Johansson, B. Holmberg, M. Maeda, H. Ohtaki. Acta Chem. Scand., Ser A38a, 437 (1984).Search in Google Scholar

94 10.1246/bcsj.52.2545, M. Maeda, Y. Maegawa, T. Yamaguchi, H. Wakita. Bull. Chem. Soc. Jpn.52, 2545 (1979).Search in Google Scholar

95 10.1088/0022-3719/18/36/001, M. Sandström, G. W. Neilson, G. Johansson, T. Yamaguchi. J. Phys. C, Solid State Phys.18, L1115 (1985).Search in Google Scholar

96 10.3891/acta.chem.scand.38a-0423, T. Yamaguchi, O. Lindqvist, J. B. Boyce, T. Claesson. Acta Chem. Scand., Ser A38a, 423 (1984).Search in Google Scholar

97 10.1016/0016-7037(96)00098-1, T. M. Seward, C. M. B. Henderson, J. M. Charnock, B. R. Dobson. Geochim. Cosmochim. Acta60, 2273 (1996).Search in Google Scholar

98 S. Moreno-Diaz. Doctoral thesis, University of Seville, Seville (1998).Search in Google Scholar

99 10.1021/jp0045888, V. Dubois, P. Archirel, A. Boutin. J. Phys. Chem. B105, 9363 (2001).Search in Google Scholar

100 10.1021/jp027769d, R. Armunanto, C. F. Schwenk, B. M. Rode. J. Phys. Chem. A107, 3132 (2003).Search in Google Scholar

101 10.1021/ic00135a024, Ö. Gröning, T. Drakenberg, L. I. Elding. Inorg. Chem.21, 1820 (1982).Search in Google Scholar

102 10.1021/ic050547k, A.-V. Mudring, F. Rieger. Inorg. Chem.44, 6240 (2005) and refs. therein.Search in Google Scholar PubMed

103 10.1021/ic970909r, L. Shimoni-Livny, J. P. Glusker, C. W. Bock. Inorg. Chem.37, 1853 (1998) and refs. therein.Search in Google Scholar

104 10.1021/ic0100121, D. L. Reger, T. D. Wright, C. A. Little, J. J. S. Lamba, M. D. Smith. Inorg. Chem.40, 3810 (2001).Search in Google Scholar PubMed

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