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Electron paramagnetic resonance, optical absorption, and magnetic circular dichroism studies of the CO 3 molecular-ion in irradiated natural beryl

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Abstract

Room temperature X-irradiation of some natural beryls produced several new absorption lines in the electron paramagnetic resonance (EPR) spectrum, a known series of optical absorption lines in the 500–700 nm range, and a shift of the absorption edge to lower energies. Several of the new EPR lines and part of the irradiation-induced shift of the absorption edge disappeared after a few days at room temperature, and were not examined in detail. However, three of the paramagnetic centres responsible for the new EPR lines were stable at room temperature and two of these have previously been identified as atomic hydrogen and the methyl radical, CH3. These species were stable to ∼150 and ∼450°C respectively.

The third stable species, hitherto unreported, showed a single-line EPR spectrum of axial symmetry, with g∥=2.0051 and g⊥=2.0152. This spectrum was found to be intensity-correlated with the series of optical bands in the 500–700 nm range, after thermal bleaching at 175°C. The EPR and optical spectra are therefore assigned to the same species.

It is argued that this species is the CO 3 molecular ion, located in the widest part of the structural channel and aligned with the plane of the molecule perpendicular to the c axis. The EPR spectrum is consistent with a 2 A2 ground state of a CO 3 molecule with trigonal symmetry, and this requires that the optical transition has a 2 A22 E′ character. Most of the features in the optical spectrum can be assigned to coupling of a totally symmetric mode of frequency ∼1020 cm−1 onto a zero-phonon line at 14,490 cm−1 and a second weaker line at 16,020 cm−1. However, both of these two fundamental lines are structured, and the two components show strong temperature-dependent derivative-shaped magnetic circular dichroism (MCD). Furthermore, the overall sign of the MCD for the line at 16,020 cm−1 is opposite to that at 14,490 cm−1. The separation (∼120 cm−1) of the two components of the 14,490 cm−1 line is much larger than that expected from spin-orbit interaction, and the origin of this splitting is not yet understood.

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References

  • Andersson, L. O.: EPR of hydrogen atoms in beryl. 18th Congress Ampere. Proceedings 18, 129–130 (1974)

    Google Scholar 

  • Atkins, P. W., Symons, M. C. R.: The structure of free radicals. Amsterdam: Elsevier 1967, pp. 166–168

    Google Scholar 

  • Beckwith, P. J., Troup, G. J.: The optical and infrared absorption of V3+ in beryl (Be3Al2Si6O18). Phys. Stat. Sol. (a) 16, 181–186. (1973)

    Google Scholar 

  • Bershov, L. V.: Methane and atomic hydrogen in some natural minerals. Geochemistry 7, 853–856 (1970)

    Google Scholar 

  • Blume, M., Watson, R. E.: Theory of spin-orbit coupling in atoms II. Comparison of theory with experiment. Proc. Roy. Soc. A 271, 565–578 (1963)

    Google Scholar 

  • Chantry, G. W., Horsfield, A., Morton, J. R., Whiffen, D. H.: The structure, electron resonance and optical spectra of trapped CO 3 and NO3. Mol. Phys. 5, 589–599 (1962)

    Google Scholar 

  • Cunningham, J.: Electron-hole trapping in X-irradiated CaCO3 and NaNO3. J. Phys. Chem. 71, 1967–1970 (1967)

    Google Scholar 

  • Deer, W. A., Howie, R. A., Zussman, J.: Beryl. In: Rock Forming Minerals, Vol. 1. London: Longman 1962, pp. 256–267

    Google Scholar 

  • Dvir, M., Low, W.: Paramagnetic resonance and optical spectrum of iron in beryl. Phys. Rev. 119, 1587–1591 (1960)

    Google Scholar 

  • Ebert, I., Hennig, H. P.: Electron spin resonance of mechanically activated quartz. Z. Phys. Chemie 255, 812–814 (1974)

    Google Scholar 

  • Gilinskaya, L. G., Shcherbakova, K. Ya., Zamir, Yu. N.: Carbon in the structure of apatite according to electron paramagnetic resonance data. Sov. Phys.: Crystallography 15, 1016–1019 (1971)

    Google Scholar 

  • Golding, R. M., Henchman, M.: ESR study of NO2 and NO3 in irradiated lead nitrate. J. Chem. Phys. 40, 1554–1564 (1964)

    Google Scholar 

  • Hisatsuna, I. C., Adl, T., Beatun, E. C., Kempf, R. J.: Matrix isolation and decay kinetics of carbon dioxide and carbonate anion free radicals. J. Phys. Chem. 74, 3225–3231 (1970)

    Google Scholar 

  • Jacox, M. E., Milligan, D. E.: Matrix-isolation study of the vibrational spectrum and structure of the CO 3 radical anion. J. Mol. Spec. 52, 363–379 (1974)

    Google Scholar 

  • Koryagin, V. F., Grechusnikov, B. N.: Electron paramagnetic resonance spectrum of atomic hydrogen in beryllium (sic). Sov. Phys.: Solid State 7, 2010–2 (1966)

    Google Scholar 

  • Linares, R. C.: Growth of beryl from molten salt solutions. Amer. Mineral. 52, 1554–1559 (1967)

    Google Scholar 

  • Nakamoto, K.: Infrared spectra of inorganic and coordination compounds. New York: Wiley 1963, p. 92

    Google Scholar 

  • Nassau, K., Wood, D. L.: The nature of the new Maxixe-type beryl. Lapid. Journal 27, 1032–1058 (1973)

    Google Scholar 

  • Nassau, K.: The effect of gamma rays on the colour of beryl, smoky quartz, amethyst and topaz. Lapid. Journal 28, 20–40 (1974)

    Google Scholar 

  • Nassau, K., Prescott, B. E., Wood, D. L.: The deep blue Maxixe-type color centre in beryl. Amer. Mineral. 61, 100–107 (1976)

    Google Scholar 

  • Olsen, J. F., Burnelle, L.: Distortions in trigonally symmetric radicals NO3 and CO 3 . J. Am. Chem. Soc. 92, 3659–3664 (1970)

    Google Scholar 

  • Price, D. C., Vance, E. R., Smith, G., Edgar, A., Dickson, B. L.: Mössbauer effect studies of beryl. J. de Phys., to be published (1976)

  • Ramsay, D.A.: Optical spectra of gaseous free radicals. Proc. Xth Coll. Spec. Int., 583–596 (1962)

  • Samoilovich, M. I., Novozhilov, A. I.: EPR spectrum of CH3, H2O+ and OH radicals and atomic hydrogen in beryl. Zh. Neorg. Khim 15, 84–86 (1970)

    Google Scholar 

  • Schatz, P. N., McCaffery, A.J.: The Faraday Effect. Quart. Rev. 23, 552–584 (1969)

    Google Scholar 

  • Serway, R. A., Marshall, S. A.: Electron spin resonance absorption spectra of CO 3 and CO 3 molecule-ions in irradiated single-crystal calcite. J. Chem. Phys. 46, 1949–1952 (1967a)

    Google Scholar 

  • Serway, R. A., Marshall, S. A.: Electron spin resonance absorption spectrum of orthorhombic CO 3 molecule-ions in irradiated single crystal calcite. J. Chem. Phys. 47, 868–869 (1967b)

    Google Scholar 

  • Solozhenkin, P. M., Glembotskii, V. A., Emel'yanov, A. F., Kopitsya, N. I.: Effect of γ-irradiation on the flotation of some aluminosilicates and phosphates. Izv. Akad. Nauk. Tadzh SSR, Otd. Fiz.-Mat. Geol. Khim. Nauk. (2) 58–62 (1971)

  • Stoneham, A. M.: Theory of Defects in Solids. Oxford University Press 1975, pp. 631–651

  • Tench, A. J., Lawson, T., Kibblewhite, J. F. J.: Oxygen species absorbed on oxides. J. Chem. Soc.: Faraday Trans. I, 68, 1169 (1972)

    Google Scholar 

  • Top, Z. H., Raziel, S., Luz, Z., Silver, B. L.: ESR of the radical-ion CO 3 in gamma-irradiated potassium bicarbonate. J. Magn. Res. 12, 102–108 (1973)

    Google Scholar 

  • Walker, T. E. H., Horsley, J. A.: Non-empirical calculation of the electronic energy levels of the BF +3 ion. Interpretation of the photoelectron spectrum of BF3. Mol. Phys. 21, 939–942 (1971)

    Google Scholar 

  • Walsh, A. D.: The electronic orbitals, shapes and spectra of polyatomic molecules. Part V: Tetratomic, non-hydride molecules, AB3. J. Chem. Soc. 2301–2306 (1953)

  • Webster, R.: Gems. London: Butterworths 1970, p. 92

  • Wood, D. E., Lozos, G. P.: EPR study of NO2 and NO3 produced in urea by uv irradiation, x-irradiation, and constiuent tritium atom decay. J. Chem. Phys. 64, 546–551 (1976)

    Google Scholar 

  • Wood, D. L., Nassau, K.: Infrared spectra of foreign molecules in beryl. J. Chem. Phys. 47, 2220–2228 (1967)

    Google Scholar 

  • Wood, D. L., Nassau, K.: The characterization of beryl and emerald by visible and inrared absorption spectroscopy. Amer. Mineral. 53, 777–800 (1968)

    Google Scholar 

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Edgar, A., Vance, E.R. Electron paramagnetic resonance, optical absorption, and magnetic circular dichroism studies of the CO 3 molecular-ion in irradiated natural beryl. Phys Chem Minerals 1, 165–178 (1977). https://doi.org/10.1007/BF00307316

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