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Published in: Physics of Metals and Metallography 8/2022

01-08-2022 | STRUCTURE, PHASE TRANSFORMATIONS, AND DIFFUSION

Mössbauer Emission Spectroscopy of Grain Boundaries in Ultrafine-Grained Niobium Obtained by Severe Plastic Deformation

Authors: V. V. Popov, E. V. Osinnikov, R. M. Falakhutdinov

Published in: Physics of Metals and Metallography | Issue 8/2022

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Abstract

Grain boundaries in ultrafine-grained niobium deformed by high-pressure torsion have been studied by Mössbauer emission spectroscopy on 57Co(57Fe) nuclei. The evolution of the grain boundary state upon heating has been studied. Grain boundaries have been shown to be in a “nonequilibrium” (deformation-modified) state, which is characterized by an excess free volume, after severe plastic deformation. Annealing changes the state of grain boundaries, bringing them closer to the state characteristic of coarse-grained materials.

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Literature
1.
go back to reference A. M. Glezer, “Structural classification of nanomaterials,” Deformatsiya i Razrushenie Materialov, No. 2, 1–8 (2009). A. M. Glezer, “Structural classification of nanomaterials,” Deformatsiya i Razrushenie Materialov, No. 2, 1–8 (2009).
2.
go back to reference A. I. Gusev, Nanomaterials. Nanostructures. Nanotechnologies (FIZMATLIT, Moscow, 2009) [in Russian]. A. I. Gusev, Nanomaterials. Nanostructures. Nanotechnologies (FIZMATLIT, Moscow, 2009) [in Russian].
3.
go back to reference R. Z. Valiev and I. V. Aleksandrov, Nanostructural Materials, Obtained by Severe Plastic deformation (Logos, Moscow, 2000) [in Russian]. R. Z. Valiev and I. V. Aleksandrov, Nanostructural Materials, Obtained by Severe Plastic deformation (Logos, Moscow, 2000) [in Russian].
4.
go back to reference K. Edalati, A. Bachmaier, V. A. Beloshenko, Y. Beygelzimer, V. D. Blank, W. J. Botta, K. Bryla, J. Cizek, S. Divinski, N. A. Enikeev, Y. Estrin, G. Faraji, R. B. Figueiredo, M. Fuji, T. Furuta, T. Grosdidier, J. Gubicza, A. Hohenwarter, Z. Horita, J. Huot, Y. Ikoma, M. Janecek, M. Kawasaki, P. Král, S. Kuramoto, T. G. Langdon, D. R. Leiva, V. I. Levitas, A. Mazilkin, M. Mito, H. Miyamoto, T. Nishizaki, R. Pippan, V. V. Popov, E. N. Popova, G. Purcek, O. Renk, A. Révész, X. Sauvage, V. Sklenicka, W. Skrotzki, B. B. Straumal, S. Suwas, L. S. Toth, N. Tsuji, R. Z. Valiev, G. Wilde, M. J. Zehetbauer, and X. Zhu, “Nanomaterials by severe plastic deformation: review of historical developments and recent advances,” Mater. Res. Lett. 10, 163–256 (2022).CrossRef K. Edalati, A. Bachmaier, V. A. Beloshenko, Y. Beygelzimer, V. D. Blank, W. J. Botta, K. Bryla, J. Cizek, S. Divinski, N. A. Enikeev, Y. Estrin, G. Faraji, R. B. Figueiredo, M. Fuji, T. Furuta, T. Grosdidier, J. Gubicza, A. Hohenwarter, Z. Horita, J. Huot, Y. Ikoma, M. Janecek, M. Kawasaki, P. Král, S. Kuramoto, T. G. Langdon, D. R. Leiva, V. I. Levitas, A. Mazilkin, M. Mito, H. Miyamoto, T. Nishizaki, R. Pippan, V. V. Popov, E. N. Popova, G. Purcek, O. Renk, A. Révész, X. Sauvage, V. Sklenicka, W. Skrotzki, B. B. Straumal, S. Suwas, L. S. Toth, N. Tsuji, R. Z. Valiev, G. Wilde, M. J. Zehetbauer, and X. Zhu, “Nanomaterials by severe plastic deformation: review of historical developments and recent advances,” Mater. Res. Lett. 10, 163–256 (2022).CrossRef
5.
go back to reference R. Valiev, R. Islamgaliev, and I. Alexandrov, “Bulk nanostructured materials from severe plastic deformation,” Prog. Mater. Sci. 45, 103–189 (2000).CrossRef R. Valiev, R. Islamgaliev, and I. Alexandrov, “Bulk nanostructured materials from severe plastic deformation,” Prog. Mater. Sci. 45, 103–189 (2000).CrossRef
6.
go back to reference Grain Boundary Diffusion and Properties of Nanostructural Materials, Ed. by Yu.R. Kolobov and R.Z. Valieva (Nauka, Novosibirsk, 2001) [in Russian]. Grain Boundary Diffusion and Properties of Nanostructural Materials, Ed. by Yu.R. Kolobov and R.Z. Valieva (Nauka, Novosibirsk, 2001) [in Russian].
7.
go back to reference A. Nazarov, A. Romanov, and R. Z. Valiev, “On the structure, stress fields and energy of nonequilibrium grain boundaries,” Acta Metall. Mater. 41, 1033–1040 (1993).CrossRef A. Nazarov, A. Romanov, and R. Z. Valiev, “On the structure, stress fields and energy of nonequilibrium grain boundaries,” Acta Metall. Mater. 41, 1033–1040 (1993).CrossRef
8.
go back to reference S. V. Divinski, “Grain boundary diffusion in severely deformed metals: State of the art and unresolved issues,” Diffus. Found. 5, 57–73 (2015).CrossRef S. V. Divinski, “Grain boundary diffusion in severely deformed metals: State of the art and unresolved issues,” Diffus. Found. 5, 57–73 (2015).CrossRef
9.
go back to reference A. A. Nazarov, “Nonequilibrium grain boundaries in bulk nanostructured metals and their recovery under the influences of heating andcyclic deformation. Review,” Lett. Mater. 8, 372–381 (2018).CrossRef A. A. Nazarov, “Nonequilibrium grain boundaries in bulk nanostructured metals and their recovery under the influences of heating andcyclic deformation. Review,” Lett. Mater. 8, 372–381 (2018).CrossRef
10.
go back to reference V. N. Kaigorodov and S. M. Klotsman, “Nuclear gamma resonance at iron-57 nuclei located at the boundaries of copper grains,” Pis’ma v ZhETF 28, No. 6, 386–388 (1978). V. N. Kaigorodov and S. M. Klotsman, “Nuclear gamma resonance at iron-57 nuclei located at the boundaries of copper grains,” Pis’ma v ZhETF 28, No. 6, 386–388 (1978).
11.
go back to reference V. N. Kaigorodov and S. M. Klotsman, “Impurity states in the grain boundaries and adjacent to them crystalline regions,” Phys. Rev. B 49, 9374–9399 (1994). V. N. Kaigorodov and S. M. Klotsman, “Impurity states in the grain boundaries and adjacent to them crystalline regions,” Phys. Rev. B 49, 9374–9399 (1994).
12.
go back to reference V. N. Kaigorodov, S. M. Klotsman, and D. V. Zherebtsov, “Segregates of vacancy–interstitial impurity complexes in polycrystalline tantalum,” Phys. Met. Metallogr. 86, 70 (1998). V. N. Kaigorodov, S. M. Klotsman, and D. V. Zherebtsov, “Segregates of vacancy–interstitial impurity complexes in polycrystalline tantalum,” Phys. Met. Metallogr. 86, 70 (1998).
13.
go back to reference V. N. Kaigorodov, V. V. Popov, E. N. Popova, T. N. Pavlov, and S. V. Efremova, “Mössbauer investigation of Sn diffusion and segregation in grain boundaries of polycrystalline Nb,” J. Phase Equilib. Diffus. 26, 510–515 (2005).CrossRef V. N. Kaigorodov, V. V. Popov, E. N. Popova, T. N. Pavlov, and S. V. Efremova, “Mössbauer investigation of Sn diffusion and segregation in grain boundaries of polycrystalline Nb,” J. Phase Equilib. Diffus. 26, 510–515 (2005).CrossRef
14.
go back to reference V. V. Popov, “Emission Mössbauer spectroscopy of grain boundaries of polycrystalline copper,” Phys. Met. Metallogr. 113, 883–887 (2012).CrossRef V. V. Popov, “Emission Mössbauer spectroscopy of grain boundaries of polycrystalline copper,” Phys. Met. Metallogr. 113, 883–887 (2012).CrossRef
15.
go back to reference V. V. Popov and A. V. Sergeev, “Emission Mössbauer spectroscopy of grain boundaries in polycrystalline molybdenum,” Phys. Met. Metallogr. 116, 378–384 (2015).CrossRef V. V. Popov and A. V. Sergeev, “Emission Mössbauer spectroscopy of grain boundaries in polycrystalline molybdenum,” Phys. Met. Metallogr. 116, 378–384 (2015).CrossRef
16.
go back to reference V. V. Popov, V. N. Kaigorodov, E. N. Popova, and A. V. Stolbovsky, “NGR investigation of grain-boundary diffusion in poly- and nanocrystalline Nb,” Defect Diffus. Forum 263, 69–74 (2007). V. V. Popov, V. N. Kaigorodov, E. N. Popova, and A. V. Stolbovsky, “NGR investigation of grain-boundary diffusion in poly- and nanocrystalline Nb,” Defect Diffus. Forum 263, 69–74 (2007).
17.
go back to reference V. V. Popov, G. P. Grabovetskaya, A. V. Sergeev, and I. P. Mishin, “Mössbauer spectroscopy of grain boundaries in submicrocrystalline molybdenum obtained by severe plastic deformation,” Phys. Met. Metallogr. 106, 490–494 (2008).CrossRef V. V. Popov, G. P. Grabovetskaya, A. V. Sergeev, and I. P. Mishin, “Mössbauer spectroscopy of grain boundaries in submicrocrystalline molybdenum obtained by severe plastic deformation,” Phys. Met. Metallogr. 106, 490–494 (2008).CrossRef
18.
go back to reference V. V. Popov, E. N. Popova, A. V. Sergeev, A. V. Stolbovsky, R. Z. Valiev, and V. U. Kazihanov, “Structure and properties of grain boundaries in submicrocrystalline W obtained by severe plastic deformation,” Defect Diff. Forum 283–286, 629–638 (2009). V. V. Popov, E. N. Popova, A. V. Sergeev, A. V. Stolbovsky, R. Z. Valiev, and V. U. Kazihanov, “Structure and properties of grain boundaries in submicrocrystalline W obtained by severe plastic deformation,” Defect Diff. Forum 283286, 629–638 (2009).
19.
go back to reference V. V. Popov, “Mössbauer spectroscopy of interfaces in metals,” Phys. Met. Metallogr. 113, 1257–1289 (2012).CrossRef V. V. Popov, “Mössbauer spectroscopy of interfaces in metals,” Phys. Met. Metallogr. 113, 1257–1289 (2012).CrossRef
20.
go back to reference V. V. Popov and E. V. Osinnikov, “Mechanism of grain-boundary diffusion and grain-boundary segregation of 57Co in polycrystalline Nb,” Phys. Met. Metallogr. 122, 891–895 (2021).CrossRef V. V. Popov and E. V. Osinnikov, “Mechanism of grain-boundary diffusion and grain-boundary segregation of 57Co in polycrystalline Nb,” Phys. Met. Metallogr. 122, 891–895 (2021).CrossRef
21.
go back to reference D. Ablitzee, “Diffusion of niobium, iron, cobalt, nickel and copper in niobium,” Philos. Mag. 35, 1239–1256. D. Ablitzee, “Diffusion of niobium, iron, cobalt, nickel and copper in niobium,” Philos. Mag. 35, 1239–1256.
22.
go back to reference E. N. Popova, V. V. Popov, E. P. Romanov, and V. P. Pilyugin, “Effect of the degree of deformation on the structure and thermal stability of nanocrystalline niobium produced by high-pressure torsion,” Phys. Met. Metallogr. 103, 407–413 (2007). E. N. Popova, V. V. Popov, E. P. Romanov, and V. P. Pilyugin, “Effect of the degree of deformation on the structure and thermal stability of nanocrystalline niobium produced by high-pressure torsion,” Phys. Met. Metallogr. 103, 407–413 (2007).
23.
go back to reference V. V. Popov, “Model of grain-boundary diffusion with allowance for near-boundary layers of equilibrium composition,” Phys. Met. Metallogr. 102, 453–461 (2006).CrossRef V. V. Popov, “Model of grain-boundary diffusion with allowance for near-boundary layers of equilibrium composition,” Phys. Met. Metallogr. 102, 453–461 (2006).CrossRef
24.
go back to reference V. V. Popov, “Analysis of possibilities of Fisher’s model development,” Diffus. Defect Data B: Solid State Phenom. 138, 133–144 (2008). V. V. Popov, “Analysis of possibilities of Fisher’s model development,” Diffus. Defect Data B: Solid State Phenom. 138, 133–144 (2008).
25.
go back to reference R. Ingalls, H. G. Drickamer, and G. De Pasqualki, “Isomer shift of Fe57 under pressure,” Phys. Rev. 155, 165–170 (1967).CrossRef R. Ingalls, H. G. Drickamer, and G. De Pasqualki, “Isomer shift of Fe57 under pressure,” Phys. Rev. 155, 165–170 (1967).CrossRef
26.
go back to reference Mössbauer Effect Data Center (www.unca.edu/medc). Mössbauer Effect Data Center (www.unca.edu/medc).
27.
go back to reference Physical Values. Handbook, Ed. by I.S. Grigor’ev and E.Z. Meilikhov (Energoatomizdat, 1991, Moscow, 1232) [in Russian]. Physical Values. Handbook, Ed. by I.S. Grigor’ev and E.Z. Meilikhov (Energoatomizdat, 1991, Moscow, 1232) [in Russian].
28.
go back to reference V. V. Popov, A. V. Sergeev, N. K. Arkhipova, and A. Yu. Istomina, Determination of the parameters of grain-boundary diffusion and segregation of Co in W using an improved model of grain-boundary diffusion, Phys. Met. Metallogr. 112, 256–266 (2011).CrossRef V. V. Popov, A. V. Sergeev, N. K. Arkhipova, and A. Yu. Istomina, Determination of the parameters of grain-boundary diffusion and segregation of Co in W using an improved model of grain-boundary diffusion, Phys. Met. Metallogr. 112, 256–266 (2011).CrossRef
Metadata
Title
Mössbauer Emission Spectroscopy of Grain Boundaries in Ultrafine-Grained Niobium Obtained by Severe Plastic Deformation
Authors
V. V. Popov
E. V. Osinnikov
R. M. Falakhutdinov
Publication date
01-08-2022
Publisher
Pleiades Publishing
Published in
Physics of Metals and Metallography / Issue 8/2022
Print ISSN: 0031-918X
Electronic ISSN: 1555-6190
DOI
https://doi.org/10.1134/S0031918X22080063

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