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Positronium in a Liquid Phase: Formation, Bubble State and Chemical Reactions

DOI: 10.1155/2012/431962

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Abstract:

The present approach describes the fate since its injection into a liquid until its annihilation. Several stages of the evolution are discussed: (1) energy deposition and track structure of fast positrons: ionization slowing down, number of ion-electron pairs, typical sizes, thermalization, electrostatic interaction between and the constituents of its blob, and effect of local heating; (2) positronium formation in condensed media: the Ore model, quasifree Ps state, intratrack mechanism of Ps formation; (3) fast intratrack diffusion-controlled reactions: Ps oxidation and ortho-paraconversion by radiolytic products, reaction rate constants, and interpretation of the PAL spectra in water at different temperatures; (4) Ps bubble models. Inner structure of positronium (wave function, energy contributions, relationship between the pick-off annihilation rate and the bubble radius). 1. Introduction Positrons ( ) as well as positronium atoms (Ps) are recognized as nanoscale probes of the local structure in a condensed phase (liquid or solid) and of the early radiolytic physicochemical processes occurring therein. The parameters of positron annihilation spectra determined experimentally (e.g., positron and Ps lifetimes, angular and energetic widths of the spectra, and Ps formation probability) are highly sensitive to the chemical composition, the local molecular environment of Ps (free volume size), and the presence of structural defects. They are also sensitive to variation of temperature, pressure, external electric and magnetic fields, and phase transitions. The informative potentiality of positron spectroscopy strongly depends on the reliability of any theory describing the behavior of positrons in matter, since it should help decipher the information coded in the annihilation spectra. So, realistic models are needed for track structure, energy losses, ionization slowing down and thermalization, intratrack reactions (ion-electron recombination, solvation, and interaction with scavengers), Ps formation process, Ps interaction with chemically active radiolytic species, and /Ps trapping by structural defects. Usually, treatment of the measured annihilation spectra is reduced to their resolution into a set of simple trial functions: sums of decaying time exponentials in the case of PALS (positron annihilation lifetime spectroscopy) and of Gaussians in the case of ACAR (angular correlation of annihilation radiation) and DBAR (doppler broadening of annihilation radiation). The outcome of such conventional analyses of positron annihilation data is the intensities of

References

[1]  J. Dryzek and P. Horodek, “The distribution of slowing-down times of positrons emitted from 22Na and 68Ge\68Ga isotopes into metals,” Materials Science Forum, vol. 666, pp. 10–14, 2011.
[2]  H. G. Paretzke, “Radiation track structure theory,” in Kinetics of Nonhomogeneous Processes, G. R. Freeman, Ed., pp. 89–170, John Wiley & Sons, New York, NY, USA, 1987.
[3]  V. M. Byakov and S. V. Stepanov, “Common features in the formation of Ps, Mu, radioltic hydrogen and solvated electrons in aqueous solutions,” Journal of Radioanalytical and Nuclear Chemistry, vol. 210, no. 2, pp. 371–405, 1996.
[4]  V. M. Byakov and F. G. Nichiporov, Intratrack Chemical Processes, Energoatomizdat, Moscow, Russia, 1985.
[5]  S. V. Stepanov, “Energy losses of subexcitation charged particles in polar media,” Radiation Physics and Chemistry, vol. 46, no. 1, pp. 29–37, 1995.
[6]  S. V. Stepanov and V. M. Byakov, “Physical and radiation chemistry of the positron and positronium,” in Principles and Applications of Positron and Positronium Chemistry, Y. C. Jean, P. E. Mallone, and D. M. Schrader, Eds., chapter 5, World Scientific Publications, 2003.
[7]  S. V. Stepanov and V. M. Byakov, “Electric field effect on positronium formation in liquids,” Journal of Chemical Physics, vol. 116, no. 14, pp. 6178–6195, 2002.
[8]  S. V. Stepanov, V. M. Byakov, C. L. Wang, Y. Kobayashi, and K. Hirata, “Electric field effect on Ps formation: black blob model,” Materials Science Forum, vol. 363–365, pp. 392–394, 2001.
[9]  S. V. Stepanov, V. M. Byakov, and Y. Kobayashi, “Ps formation in molecular media: effect of the external electric field,” Physical Review B, vol. 72, no. 5, Article ID 054205, 2005.
[10]  S. V. Stepanov and V. M. Byakov, “Ps formation in molecular media: low temperature hydrocarbons,” Physica Status Solidi (C) Current Topics in Solid State Physics, vol. 4, no. 10, pp. 3684–3689, 2007.
[11]  F. Bockstahl, I. Billard, G. Duplatre, and A. Bonnenfant, “Positronium formation and quenching in frozen and liquid solutions in octanol,” Chemical Physics, vol. 236, no. 1–3, pp. 393–403, 1998.
[12]  M. Muhieddine, E. Canot, and R. March, “Various approaches for solving problems in heat conduction with phase,” International Research Journal of Finance, vol. 6, no. 1, pp. 1–20, 2009.
[13]  S. V. Stepanov, D. S. Zvezhinski, G. Duplatre, V. M. Byakov, Y. Y. Batskikh, and P. S. Stepanov, “Incorporation of the magnetic quenching effect into the blob model of Ps formation. Finite sized Ps in a potential well,” Materials Science Forum, vol. 666, pp. 109–114, 2011.
[14]  K. Kotera, T. Saito, and T. Yamanaka, “Measurement of positron lifetime to probe the mixed molecular states of liquid water,” Physics Letters A, vol. 345, no. 1–3, pp. 184–190, 2005.
[15]  G. Duplatre, A. Haessler, and J. C. Abbé, “Interactions of positronium with Co2+ in water: mechanisms and temperature effects,” Journal of Physical Chemistry, vol. 89, no. 9, pp. 1756–1760, 1985.
[16]  J. C. Abbé, G. Duplatre, A. Haessler, A. Marques Netto, and D. Pilo Veloso, “Temperature and (polar) solvent effects on positronium reactions with nitroxyl free radicals,” Journal of Physical Chemistry, vol. 88, no. 10, pp. 2071–2076, 1984.
[17]  J. Talamoni, J. C. Abbé, G. Duplatre, and A. Haessler, “Temperature effects on positronium formation and inhibition: a contribution to the elucidation of early spur processes-III. Aqueous solutions,” Radiation Physics and Chemistry, vol. 20, no. 4, pp. 275–280, 1982.
[18]  S. V. Stepanov, G. Duplatre, V. M. Byakov, V. S. Subrahmanyam, D. S. Zvezhinskii, and A. S. Mishagina, “Influence of temperature on intratrack processes and Ps formation and behaviour in liquid water,” Materials Science Forum, vol. 607, pp. 213–217, 2009.
[19]  C. Bonacina, G. Comini, A. Fasano, and M. Primicerio, “Numerical solution of phase-change problems,” International Journal of Heat and Mass Transfer, vol. 16, no. 10, pp. 1825–1832, 1973.
[20]  R. C. Wilhoit, J. Chao, and K. R. Hall, “Thermodynamic properties of key organic oxygen compounds in the carbon range C1 to C4. Part 1. Properties of condensed phases,” Journal of Physical and Chemical Reference Data, vol. 14, no. 1, pp. 1–175, 1985.
[21]  C. Yaws, Thermophysical Properties of Chemicals and Hydrocarbons, William Andrew, New York, NY, USA, 2008.
[22]  O. A. Korolyuk, “Thermal conductivity of molecular crystals of monoatomic alcohols: from methanol to butanol,” Fizika Nizkikh Temperatur, vol. 37, no. 5, pp. 526–530, 2011.
[23]  C. Yaws, Lange's Handbook of Chemistry, McGraw-Hill, 15th edition, 1999.
[24]  D. R. Lide, Handbook of Chemistry and Physics, CRC Press LLC, 84th edition, 2004.
[25]  O. E. Mogensen, Positron Annihilation in Chemistry, Springer, Berlin, Germany, 1995.
[26]  T. Tabata, Y. Ito, and S. Tagawa, Handbook of Radiation Chemistry, CRC Press, Boca Raton, Fla, USA, 1991.
[27]  Y. Ito, “Radiation chemistry: intraspur effects and positronium formation mechanism,” in Positron and Positronium Chemistry, D. M. Schrader and Y. C. Jean, Eds., Studies in Physical and Theoretical Chemistry Series, pp. 120–158, Elsevier Scientific Publishers, 1988.
[28]  O. E. Mogensen, “Spur reaction model of positronium formation,” Journal of Chemical Physics, vol. 60, no. 3, pp. 998–1004, 1974.
[29]  V. M. Byakov, V. I. Goldanskii, and V. P. Shantarovich, “About the possible role of “dry” electrons in positronium formation in a liquid,” Doklady Physical Chemistry, vol. 219, no. 3, pp. 1090–1093, 1974, Doklady Akademii Nauk, SSSR, V. 219(3), pp. 633–636, 1974.
[30]  V. M. Byakov, “The nature of the precursors of radiolytic molecular hydrogen in water, and the mechanism of positronium formation in liquids,” International Journal for Radiation Physics and Chemistry, vol. 8, no. 3, pp. 283–288, 1976.
[31]  K. V. Mikhin, S. V. Stepanov, and V. M. Byakov, “Dynamics of positronium bubble growth in liquid media and the energy dissipation problem,” High Energy Chemistry, vol. 39, no. 1, pp. 36–43, 2005.
[32]  S. V. Stepanov, D. S. Zvezhinskii, G. Duplatre, V. M. Byakov, and V. S. Subrahmanyam, “A novel approach to the interpretation of PAL spectra in glycerol,” Materials Science Forum, vol. 607, pp. 260–262, 2009.
[33]  S. V. Stepanov, V. M. Byakov, G. Duplatre, D. S. Zvezhinskiy, and Y. V. Lomachuk, “Positronium formation in a liquid phase: influence of intratrack reactions and temperature,” Physica Status Solidi (C) Current Topics in Solid State Physics, vol. 6, no. 11, pp. 2476–2481, 2009.
[34]  A. I. Burshtein, Molecular Physics, Nauka, Novosibirsk, Russia, 1986.
[35]  S. K. Sharma, A. Zaydouri, G. Roudaut, and G. Duplatre, “Effect of water on glass transition in starch/sucrose matrices investigated through positron annihilation lifetime spectroscopy: a new approach,” Physical Chemistry Chemical Physics, vol. 13, pp. 19338–19344, 2011.
[36]  R. A. Ferrell, “Long lifetime of positronium in liquid helium,” Physical Review, vol. 108, no. 2, pp. 167–168, 1957.
[37]  S. J. Tao, “Positronium annihilation in molecular substances,” Journal of Chemical Physics, vol. 56, no. 11, pp. 5499–5510, 1972.
[38]  M. Eldrup, D. Lightbody, and J. N. Sherwood, “The temperature dependence of positron lifetimes in solid pivalic acid,” Chemical Physics, vol. 63, no. 1-2, pp. 51–58, 1981.
[39]  S. V. Stepanov and V. M. Byakov, “What do positrons say about the structure and properties of fluids?” Journal of Structural Chemistry, vol. 43, no. 6, pp. 949–971, 2002.
[40]  A. T. Stewart and C. V. Briscoe, “Positron Annihilation,” in Proceedings of the Conference International Symposium on Positron Annihilation Studies of Fluids, A. T. Stewart and L. O. Roellig, Eds., p. 383, Wayne State UniversityAcademic Press, New York, NY, USA, 1959.
[41]  A. P. Buchikhin, V. I. Gol'danskii, A. O. Tatur, and V. P. Shantarovich, “The positronium atom in organic liquids,” Journal of Experimental and Theoretical Physics, vol. 33, no. 3, article 615, 1971, Zh. Eksp. Teor. Fiz., Vol. 60(3), p. 1136, 1971.
[42]  L. O. Roellig, “Positron annihilation in liquids and condensed gases,” in Proceedings of Wayne State University Conference on Positron AnnihilationAcademic Press, A. T. Stewart and L. O. Roellig, Eds., p. 127, New York, NY, USA, 1967.
[43]  C. Dauwe, N. Balcaen, S. Van Petegem, and D. Segers, “Trapping of positronium in a size-dependent spherical square well potential,” Radiation Physics and Chemistry, vol. 58, no. 5-6, pp. 681–685, 2000.
[44]  D. Dutta, B. N. Ganguly, D. Gangopadhyay, T. Mukherjee, and B. Dutta-Roy, “Corrections to the prevalent bubble model of positronium annihilation in liquids,” Physical Review B, vol. 65, no. 9, Article ID 094114, 2002.
[45]  D. Dutta, B. N. Ganguly, D. Gangopadhyay, T. Mukherjee, and B. Dutta-Roy, “General trends of positronium pick-off annihilation in molecular substances,” Journal of Physics Condensed Matter, vol. 14, no. 32, pp. 7539–7549, 2002.
[46]  B. N. Miller and T. Reese, “Path integral simulation of positronium,” Nuclear Instruments and Methods in Physics Research B, vol. 192, no. 1-2, pp. 176–179, 2002.
[47]  L. Larrimore, R. N. McFarland, P. A. Sterne, and A. L. R. Bug, “Two-chain path integral model of positronium,” Journal of Chemical Physics, vol. 113, no. 23, pp. 10642–10650, 2000.
[48]  A. L. R. Bug, M. Muluneh, J. Waldman, and P. A. Sterne, “Positronium in solids: computer simulation of pick-off and self-annihilation,” Materials Science Forum, vol. 445-446, pp. 375–379, 2004.
[49]  T. Fül?p, Z. Farkas, A. Seeger, and J. Major, “On the inner structure of confined positronium,” http://arxiv.org/abs/cond-mat/0304442v1.
[50]  V. V. Batygin and I. N. Toptygin, “Problems on electrodynamics,” Tech. Rep. 157, NIC RKhD, Moscow, Russia, 2002.
[51]  V. M. Byakov, S. V. Stepanov, and O. P. Stepanova, “Positron method for diagnostics of carcinogens,” Materials Science Forum, vol. 607, pp. 223–226, 2009.
[52]  V. M. Byakov, S. V. Stepanov, and O. P. Stepanova, “PAL spectroscopy and testing for potential carcinogens,” Physica Status Solidi (C) Current Topics in Solid State Physics, vol. 6, no. 11, pp. 2503–2506, 2009.

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