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Effects of shock-wave loading in oxides

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This paper reports results of experimental study of the influence of shock waves on the structure, ion valence, and phase composition of oxides, including the minerals tenorite (CuO) and hausmannite (Mn3O4) and perovskite-structured manganite LaMnO3. Shock-wave loading (SWL) was modeled by explosion experiments in spherical and cylindrical (in the case of tenorite) configurations. The results of strong quasi-static shear deformations of oxides under pressure are also given for comparison. The main focus was the investigation of shock wave-induced changes in oxides at the level of chemical bonds, disturbances of ionic composition and stoichiometry, relation of these processes to the formation of micro(nano)structures in the minerals, and stages and microscopic mechanisms of the development of new dense phases. It was shown that SWL-affected oxides can be successfully investigated by various methods of X-ray spectroscopy (photoelectron, absorption, and emission) and nuclear techniques (Rutherford back scattering, nuclear reaction analysis, and positron annihilation spectroscopy). Crystal structure and phase composition were explored by X-ray and neutron diffraction methods. Microscopic structures were investigated by optical, scanning electron, and scanning tunneling microscopy. It was shown that the effects of SWL are initially manifested in oxides as a stoichiometry violation, an increase in the number of low-valence cations, and formation of a micro(nano)structure. Plastic deformations developed during SWL are especially important for these processes. The decomposition of oxides during the solid-phase stage of shock metamorphism under the influence of high pressures, temperatures, and severe plastic deformations produces oxides with a low degree of oxidation and free oxygen, which can migrate over considerable distances to form new compounds. The ultradeep penetration of particles of the surrounding matrix into the target mineral during SWL can also serve as a mechanism of shock metamorphism at the solid-phase stage of transformation.

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References

  • Al’tshuler, L.V., Phase Transformations in Impact Waves, Zh. Prikl. Mekh. Tekhn. Fiz., 1978, vol. 110, no. 4, pp. 93–103.

    Google Scholar 

  • Arbuzova, T.I., Chebotaev, N.M., Gizhevskii, B.A., et al., Synthesis of Compact Nanocrystal Oxides by Severe Plastic Deformations Methods, in International Symposium. Advanced Processing of Metal and Materials. The Minerals, Metals and Material Society, San Diego: USA, 2006, vol. 3, pp. 157–167.

    Google Scholar 

  • Arbuzova, T.I., Gizhevskii, B.A., Naumov, S.V., et al., Temporal Changes in Magnetic Properties of High-Density CuO Nanoceramics, J. Magn. Magnet. Mater., 2003, vol. 258–259, pp. 342–444.

    Article  Google Scholar 

  • Arbuzova, T.I., Naumov, S.V., Kozlov, E.A., et al., Influence of Structural Defects on the Magnetic Properties of Submicron Ceramics Mn3O4, Zh. Eksp. Teor. Fiz., 2006, vol. 129, no. 6, pp. 1056–1063.

    Google Scholar 

  • Arbuzova, T.I., Naumov, S.V., Samokhvalov, A.A., et al., Role of Surface States in the Magnetic Properties of Nanocrystalline CuO, Fiz. Tverd. Tela, 2001, vol. 43, no. 5, pp. 846–850.

    Google Scholar 

  • Arbuzova, T.I., Voronin, V.I., Gizhevskii, B.A., et al., Heterogeneous Paramagnetic State of Nanoceramics LaMnO3 + δ Obtained by Impact-Wave Loading, Fiz. Tverd. Tela, 2010, vol. 52, no. 6, pp. 1143–1151.

    Google Scholar 

  • Batsanov, S.S., Physicochemical Effects of Explosion on Substance, Izv. Akad. Nauk SSSR, Ser. Neorg. Mater., 1970, vol. 6, no. 4, pp. 696–707.

    Google Scholar 

  • Batsanov, S.S., Solid Phase Chemical Reactions in Impact Waves: Kinetic Studies and Mechanism, Fiz. Goreniya Vzryva, 1996, vol. 32, no. 1, pp. 115–128.

    Google Scholar 

  • Carel, C., Mouallem, M., and Gaude, J., Re-Examination of the Non-Stoichiometry and Defect Structure of Copper (II) Oxide or Tenorite, Cu1 ± z O or CuO1 ± ɛ, Solid State Ionics, 1999, vol. 117, pp. 47–55.

    Article  Google Scholar 

  • Deribas, A.A., Fizika uprochneniya i svarki vzryvom (Physics of Reinforcement and Welding), Novosibirsk: Nauka, 1980.

    Google Scholar 

  • Druzhkov, A.P., Gizhevskii, B.A., Arbuzov, V.L., et al., Electronic and Structural Properties of Micro- and Nanometer-Sized Crystalline Copper Monoxide Ceramics Investigated by Positron Annihilation, J. Phys. Condens. Matter, 2002, vol. 14, pp. 7981–7990.

    Article  Google Scholar 

  • Duvall, G.E. and Graham, R.A., Phase Transitions Under Shock Wave Loading, Rev. Mod. Phys., 1977, vol. 49, no. 3, pp. 523–579.

    Article  Google Scholar 

  • Feldman, V.I., Petrologiya impaktitov (Petrology of Impactites), Moscow: Mos. Gos. Univ., 1990.

    Google Scholar 

  • Feldman, V.I., Influence of Collision of Cosmic Bodies on Geological Processes, in Mezhdunarodnaya Konferentsiya “Zababakhinskie Nauchnye Chteniya”, (International Conference Zababakhin Scientific Readings), Snezhinsk: RFYaTs VNIITF, 2010, pp. 15–19.

    Google Scholar 

  • Feldman, V.I., Sazonova, L.V., and Kozlov, E.A., High-Pressure Polymorph Modifications of Some Minerals in Impactites: Geological Observations and Experimental Data, Petrology, 2007, vol. 15, no. 3, pp. 224–239.

    Article  Google Scholar 

  • Feldman, V.I., Sazonova, L.V., and Kozlov, E.A., Mobility of Major Rock-Forming Elements during Shock Metamorphism: Experimental Evidence, Dokl. Earth Sci., 2003, vol. 393, pp. 1333–1335.

    Google Scholar 

  • Feldman, V.I., Sazonova, L.V., and Kozlov, E.A., Shock Metamorphism of Some Rock-Forming Minerals: Experimental Results and Natural Observations, Petrology, 2006, vol. 14, no. 6, pp. 540–566.

    Article  Google Scholar 

  • Feldman, V.I., Shock-Thermal Decomposition of Minerals as One of the Main Diagnostic Features of Shock Metamorphism, Solar Syst. Res., 2001, vol. 35, no. 1, pp. 90–94.

    Article  Google Scholar 

  • Galakhov, V.R., Gizhevskii, B.A., Semenova, A.S., et al., X-Ray Spectroscopy of Nanostructural Oxide Materials, Nanotekhnologii: Nauka Proizvodstvo, 2010, no. 2(7), pp. 5–16.

  • Galakhov, V.R., Semenova, A.S., and Gizhevskii, B.A., Charge State of Cations and Phase Composition of Cupric Oxide Subjected to Shock-Wave Loading: X-Ray Absorption Study, MAX-lab Activity Report 2009. 2010, pp. 214–215.

  • Gizhevskii, B.A., Galakhov, V.R., Zatsepin, D.A., et al., Phase Transforamtions in CuO during Irradiation by He+ ions and under the Effect of Spherical Impact Waves, Fiz. Tverd. Tela, 2002, vol. 44, no. 7, pp. 1318–1325.

    Google Scholar 

  • Gizhevskii, B.A., Kozhevnikov, V.E., Besshaposhnikov, Yu.P., et al., RF Patent No. 95283, Byul. Izobret., 2010, no. 18.

  • Gizhevskii, B.A., Kozlov, E.A., Ermakov, A.E., et al., Microstructure of CuO after Impact-Wave Influence and Grinding in Vibrational Mill, Fiz. Met. Metalloved., 2001, vol. 92, no. 2, pp. 52–57.

    Google Scholar 

  • Gizhevskii, B.A., Kozlov, E.A., Krynetskii, I.B., and Fishman, A.Ya., Specifics of Thermal Expansion of Dense CuO Nanoceramics, Fiz. Nizk. Temp. (Kiev), 2008, vol. 34, no. 8, pp. 817–820.

    Google Scholar 

  • Gizhevskii, B.A., Sukhorukov, Yu.P., Gan’shina, E.A., et al., Optical and Magnetooptical Properties of Nanostructural Iron-Yttrium Garnet, Fiz. Tverd. Tela, 2009, vol. 51, no. 9, pp. 1729–1734.

    Google Scholar 

  • Gizhevskii, B.A., Sukhorukov, Yu.P., Moskvin, A.S., et al., Anomalies of Optical Properties of Nanocrystalline Copper Oxides CuO and Cu2O in the Region of Fundamental Absorption Edge, Zh. Eksp. Teor. Fiz., 2006, vol. 129, no. 2, pp. 336–342.

    Google Scholar 

  • Gizhevskii, B.A., Zhuravlev, V.D., Zakharov, R.G., et al., Synthesis of Bulk Nanostructured Manganites LaMnO3 + δ by Quasi-Static and Dynamic Deformation Methods, Dokl. Chem., 2005, vol. 405, no. 4, pp. 247–250.

    Article  Google Scholar 

  • Kheifets, A.E., Zeldovich, V.I., Frolova, N.Yu., and Khomskaya, I.V., A Shock-Wave Model of the Effect of Superdeep Penetration of Powder Particles Into Metallic Materials, Materials Science-Poland, 2004, vol. 22, no. 2, pp. 171–121.

    Google Scholar 

  • Kozlov, E.A., Feldman, V.I., and Sazonova, L.V., Crystallochemical Structure of Rock-Forming Minerals and Peculiarities, Sequence and Completeness of Physicochemical Transformations in Weak and Strong Shock Waves, Conference of the American Physical Society “Shock Compression of Condensed Matter” (SCCM-2003), AIP Conference Proceed., Furnish, M.D., Gupta Y. M., and Forbes, J.W., Eds., 2004, vol. 706, pp. 1458–1461.

  • Kozlov, E.A., Sazonova, L.V., Feldman, V.I., et al., Formation of Ringwoodite during Shock-Wave Loading of Two-Mica Quartz Schist: Experimental Data, Dokl. Earth Sci., 2003, vol. 390, pp. 571–573.

    Google Scholar 

  • Kozlov, E.A., Studies of Metals, Minerals, and Meteorites in Spherical Imact-Isentropical Experiments. Polymorphic and Phase Transformations, Slabbing-Shear Disruptions, and Physicochemical Transformations (A Review), in Mezhdunarodnaya Konferentsiya “Zababakhinskie Nauchnye Chteniya” (International Conference “Zababakhin Scientific Readings), Snezhinsk: RFYaTs VNIITF, 1999, pp. 21–25.

    Google Scholar 

  • Kozlov, E.A., Tarzhanov, V.I., Andryushin, V.I., and Gizhevskii, B.A., Obtaining and Study of Volumetric High-Density Nanoceramics. On Temperature and Temporal Stability of the Complex of Properties: A Review, in Mezhdunarodnoi konferentsii IX Kharitonovskie tematicheskie nauchnye chteniya (IX-KhTNCh), “Ekstremal’nye sostoyaniya veshchestva. Detonatsiya. Udarnye volny,” (International Conference, 9th Kharitonov Topical Readings (IX-KhTNCh) on Extreme States of Matter. Detonation. Impact Waves), Mikhailov, A.L, Ed., Sarov: Tr. RFYaTs-VNIIEF, 2007b, pp. 737–753.

    Google Scholar 

  • Kozlov, E.A., Zhugin, Yu.N., Kovalenko, G.V., et al., Effect of Spherically Converging Stress Waves on the Phase Composition, Structure, and Physicochemical Transformations of the Mixture of Aluminum and Quartz Powders, The Phys. Met. Metallograph., 2007a, vol. 104, no. 1, pp. 86–98.

    Article  Google Scholar 

  • Kuznetsov, L.M., Tsvigunov, A.N., and Burdina, K.P., P-T Diagram for Manganese Oxide-Dioxide Mn3O4 and Crystalline Structure of Mn3O4-High-Pressure Phase, Geokhimiya, 1979, no. 2, pp. 254–258.

  • Ovechkina, N.A., Galakhov, V.R., Gizhevskii, B.A., et al., Shock-Loading Effect on Phase Composition of Cupric Oxide: X-Ray Absorption and Emission Study, MAX-lab Activity Rept. 2003, 2004, pp. 224–225.

  • Sazonova, L.V., Feldman, V.I., and Kozlov, E.A., Genesis of Ringwoodite during Metamorphism Induced by Impact Waves: Experimental Data, Geochem. Int., 2006, vol. 44, no. 2, pp. 137–142.

    Article  Google Scholar 

  • Slack, G.A., Demazeau, G., Plante, T., and Rabardel, L., Gaseous Oxygen at High Pressure and Its Interaction with Cupric Oxide, Phys. Rev. B, 1993, vol. 47, no. 18, pp. 12018–12029.

    Article  Google Scholar 

  • Stoffler, D., Deformation and Transformation of Rock-Forming Minerals by Natural and Experimental Shock Processes: II. Physical Properties of Shocked Minerals, Forts. Mineral., 1974, vol. 37, no. 2, pp. 256–289.

    Google Scholar 

  • Taluts, N.I., Kozlov, E.A., Dobromyslov, A.V., and Zhugin, Yu.N., Effect of Spherical Converging Stress Waves on Aluminium and Quarts Powder Mixture, J. Phys. IV. France, 2000, vol. 10, pp. Pr9-823–Pr9-827.

    Article  Google Scholar 

  • Usherenko, S.M., Sverkhglubokoe proniknovenie chastits v pregrady i sozdanie kompozitsionnykh materialov (Superdeep Penetration of Particles and Obstacles in Creating Composite Materials), Minsk: NII IP s OP, 1998.

    Google Scholar 

  • Valeeva, A.A., Gizhevskii, B.A., Pilyugin, V.P., and Rempel’, A.A., Effect of Severe Plastic Deformation on the Structure of Polycrystalline Titanium Monoxide, Phys. Met. Metallogr., 2005, vol. 99, no. 1, pp. 56–62.

    Google Scholar 

  • Vereshchagin, L.F., Zubkova, E.V., Burdina, K.P., and Aparnikov, G.L., Behavior of Oxides under the Influence of High Pressure with Simultaneous Applying of Shear Stress, Dokl. Akad. Nauk SSSR, 1971, vol. 196, no. 4, pp. 817–818.

    Google Scholar 

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Correspondence to B. A. Gizhevskii.

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Original Russian Text © B.A. Gizhevskii, V.R. Galakhov, E.A. Kozlov, 2012, published in Petrologiya, 2012, Vol. 20, No. 4, pp. 351–365.

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Gizhevskii, B.A., Galakhov, V.R. & Kozlov, E.A. Effects of shock-wave loading in oxides. Petrology 20, 317–330 (2012). https://doi.org/10.1134/S0869591112040042

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