[1]
R.Z. Valiev, R.K. Islamgaliev, I.V. Alexandrov, Progr. Mater. Sci. 45 (2000) 103–189.
Google Scholar
[2]
E.I. Teitel', L.S. Metlov, D.V. Gunderov, A.V. Korznikov, Phys. Metall. Metallogr. 113 (2012) 1162–1168.
DOI: 10.1134/s0031918x12120095
Google Scholar
[3]
X. Sauvage, A. Chbihi, X. Quelennec, J. Phys. 240 (2010) 012003.
Google Scholar
[4]
H.W. Zhang, S. Ohsaki, S. Mitao, A. Ohnuma, K. Hono, Mater. Sci. Eng. A 421 (2006) 191–199.
Google Scholar
[5]
W. Lojkowski, M. Djahanbakhsh, G. Burkle, S. Gierlotka, W. Zielinski, H.J. Fecht, Mater. Sci. Eng. A 303 (2001) 197–208.
DOI: 10.1016/s0921-5093(00)01947-x
Google Scholar
[6]
K. Hono, M. Ohnuma, M. Murayama, S. Nishida, A. Yoshie, T. Takahashi, Scripta Mater. 44 (2001) 977–983.
DOI: 10.1016/s1359-6462(00)00690-4
Google Scholar
[7]
A. Taniyama, T. Takayama, M. Arai, T. Hamada, Scripta Mater. 51 (2004) 53–58.
Google Scholar
[8]
V.G. Gavriljuk, Mater. Sci. Eng. A 345 (2003) 81–89.
Google Scholar
[9]
X. Sauvage, X. Quelennec, J.J. Malandain, P. Pareige, Scripta Mater. 54 (2006) 1099–1103.
DOI: 10.1016/j.scriptamat.2005.11.068
Google Scholar
[10]
V.A. Teplov, V.P. Pilugin, V.S. Gaviko, E.G. Chernyshov, Phil. Mag. B 68 (1993) 877–881.
Google Scholar
[11]
V.V. Stolyarov, R. Lapovok, I.G. Brodova, P.F. Thomson, Mater. Sci. Eng. A 357 (2003) 159–167.
Google Scholar
[12]
X. Sauvage, F. Wetscher, P. Pareige, Acta Mater. 53 (2005) 2127–2135.
Google Scholar
[13]
B.B. Straumal, B. Baretzky, A.A. Mazilkin, F. Phillipp, O.A. Kogtenkova, M.N. Volkov, R.Z. Valiev, Acta Mater. 52 (2004) 4469–4478.
DOI: 10.1016/j.actamat.2004.06.006
Google Scholar
[14]
A.A. Mazilkin, B.B. Straumal, E. Rabkin, B. Baretzky, S. Enders, S.G. Protasova, O.A. Kogtenkova, R.Z. Valiev, Acta Mater. 54 (2006) 3933–3939.
DOI: 10.1016/j.actamat.2006.04.025
Google Scholar
[15]
B.B. Straumal, S.G. Protasova, A.A. Mazilkin, E. Rabkin, D. Goll, G. Schütz, B. Baretzky, R.Z. Valiev, J. Mater. Sci. 47 (2012) 360–367.
DOI: 10.1007/s10853-011-5805-0
Google Scholar
[16]
C.M. Cepeda-Jiménez, J.M. García-Infanta, A.P. Zhilyaev, O.A. Ruano, and F. Carreño, J. Alloys Comp. 509 (2011) 636–643.
DOI: 10.1016/j.jallcom.2010.09.122
Google Scholar
[17]
Y. Ivanisenko, I. MacLaren, X. Sauvage, R.Z. Valiev, H. -J. Fecht, Acta Mater. 54 (2006) 1659–1669.
DOI: 10.1016/j.actamat.2005.11.034
Google Scholar
[18]
X. Sauvage, Y. Ivanisenko, J. Mater. Sci. 42 (2007) 1615–1621.
Google Scholar
[19]
Y. Ivanisenko, W. Lojkowski, R.Z. Valiev, H.J. Fecht, Acta Mater. 51 (2003) 5555–5570.
Google Scholar
[20]
V.V. Sagaradze, S.V. Morozov, V.A. Shabashov, L.N. Romashev, R.I. Kuznetsov, Phys. Met. Metall. 66 (1988) 328–338.
Google Scholar
[21]
B.B. Straumal, A.A. Mazilkin, S.G. Protasova, S.V. Dobatkin, A.O. Rodin, B. Baretzky, D. Goll, G. Schütz, Mater. Sci. Eng. A 503 (2009) 185–189.
DOI: 10.1016/j.msea.2008.03.052
Google Scholar
[22]
V.V. Sagaradze, V.A. Shabashov, Nanostruct. Mater. 9 (1997) 681–684.
Google Scholar
[23]
M. Murayama, K. Hono, Z. Horita, Mater. Trans. – JIM 40 (1999) 938–941.
Google Scholar
[24]
S. Ohsaki, S. Kato, N. Tsuji, T. Ohkubo, K. Hono, Acta Mater. 55 (2007) 2885–2895.
Google Scholar
[25]
X. Sauvage, R. Pippan, Mater. Sci. Eng. A 410–411 (2005) 345–347.
Google Scholar
[26]
X. Sauvage, C. Genevois, G. Da Costa, V. Pantsyrny, Scripta Mater. 61 (2009) 660–663.
DOI: 10.1016/j.scriptamat.2009.06.007
Google Scholar
[27]
X. Sauvage, W. Lefebvre, C. Genevois, S. Ohsaki, K. Hono, Scripta Mater. 60 (2009) 1056–1061.
Google Scholar
[28]
B.B. Straumal, S.V. Dobatkin, A.O. Rodin, S.G. Protasova, A.A. Mazilkin, D. Goll, B. Baretzky, Adv. Eng. Mater. 13 (2011) 463–469.
DOI: 10.1002/adem.201000312
Google Scholar
[29]
A.V. Korznikov, O. Dimitrov, G.F. Korznikova, J.P. Dallas, A. Quivy, R.Z. Valiev, A. Mukherjee, Nanostruct. Mater. 11 (1999) 17–23.
DOI: 10.1016/s0965-9773(98)00157-3
Google Scholar
[30]
A.V. Korznikov, G. Tram, O. Dimitrov, G.F. Korznikova, S.R. Idrisova, Z. Pakiela, Acta Mater. 49 (2001) 663–671.
DOI: 10.1016/s1359-6454(00)00345-1
Google Scholar
[31]
C. Rentenberger, H.P. Karnthaler, Acta Mater. 56 (2008) 2526–2530.
Google Scholar
[32]
A.V. Sergueeva, C. Song, R.Z. Valiev, A.K. Mukherjee, Mater. Sci. Eng. A 339 (2003) 159–165.
Google Scholar
[33]
S.D. Prokoshkin, I. Yu. Khmelevskaya, S.V. Dobatkin, I.B. Trubitsyna, E.V. Tatyanin, V.V. Stolyarov, E.A. Prokofiev, Acta Mater. 53 (2005) 2703–2714.
DOI: 10.1016/j.actamat.2005.02.032
Google Scholar
[34]
X. Sauvage, L. Renaud, B. Deconihout, D. Blavette, D. H. Ping, K. Hono, Acta. Mater. 49 (2001) 389–394.
DOI: 10.1016/s1359-6454(00)00338-4
Google Scholar
[35]
T. Miyazaki, D. Terada, Y. Miyajima, C. Suryanarayana, R. Murao, Y. Yokoyama, K. Sugiyama, M. Umemoto, T. Todaka, N. Tsuji, J. Mater. Sci. 46 (2011) 4296–4301.
DOI: 10.1007/s10853-010-5240-7
Google Scholar
[36]
A.A. Mazilkin, G.E. Abrosimova, S.G. Protasova, B.B. Straumal, G. Schütz, S.V. Dobatkin, A.S. Bakai, J. Mater. Sci. 46 (2011) 4336–4342.
DOI: 10.1007/s10853-011-5304-3
Google Scholar
[37]
V.V. Stolyarov, D.V. Gunderov, A.G. Popov, V.S. Gaviko, A.S. Ermolenko, J. Alloys Comp. 281 (1998) 69–71.
Google Scholar
[38]
Y. Matsuura, S. Hirosawa, H. Yamamoto, S. Fujimira, M. Sagawa, K. Osamura, Jap. J. Appl. Phys. Part 2 – Lett. 24 (1985) L635– L637.
Google Scholar
[39]
B.B. Straumal, A.A. Mazilkin, S.G. Protasova, D. Goll, B. Baretzky, A.S. Bakai, S.V. Dobatkin, Kovove Mater. – Metall. Mater. 49 (2011) 17–22.
DOI: 10.4149/km_2011_1_17
Google Scholar
[40]
Á. Révész, S. Hóbor, J.L. Lábár, A.P. Zhilyaev, Zs. Kovácz, J. Appl. Phys. 100 (2006) 103522.
Google Scholar
[41]
I. MacLaren, Y. Ivanisenko, R.Z. Valiev, H.J. Fecht, J. Phys. 26 (2006) 335–338.
Google Scholar
[42]
Y. Ivanisenko, I. MacLaren, X. Sauvage, R.Z. Valiev, H.J. Fecht, Sol. State Phen. 114 (2006) 133–144.
DOI: 10.4028/www.scientific.net/ssp.114.133
Google Scholar
[43]
Y. Ivanisenko, I. MacLaren, X. Sauvage, R.Z. Valiev, H.J. Fecht, Acta Mater. 54 (2006) 1659–1669.
DOI: 10.1016/j.actamat.2005.11.034
Google Scholar
[44]
A.P. Zhilyaev, I. Sabirov, G. González-Doncel, J. Molina-Aldareguía, B. Srinivasarao, M.T. Pérez-Prado, Mater. Sci. Eng. A 528, (2011) 3496–3505.
DOI: 10.1016/j.msea.2011.01.062
Google Scholar
[45]
A.P. Zhilyaev, A.V. Sharafutdinov, M.T. Pérez-Prado, Adv. Eng. Mater. 12 (2010) 754–757.
Google Scholar
[46]
A.P. Zhilyaev, F. Gálvezc, A.V. Sharafutdinov, M.T. Pérez-Prado, Mater. Sci. Eng. A 527 (2010) 3918–3928.
Google Scholar
[47]
M.T. Pérez-Prado, A.V. Sharafutdinov, A.P. Zhilyaev, Mater. Lett. 64, (2010) 211–214.
Google Scholar
[48]
M.T. Pérez-Prado, A.P. Zhilyaev, Phys. Rev. Lett. 102 (2009) 175504.
Google Scholar
[49]
K. Edalati, Z. Horita, Y. Mine, Mater. Sci. Eng. A 527 (2010) 2136–2141.
Google Scholar
[50]
K. Edalati, Z. Horita, S. Yagi, E. Matsubara, Mater. Sci. Eng. A 523 (2009) 277–281.
Google Scholar
[51]
K. Edalati, E. Matsubara, Z. Horita, Metal Mater Trans A 40 (2009) 2079–(2086).
Google Scholar
[52]
Y. Ivanisenko, A. Kilmametov, H. Roesner, R.Z. Valiev, Int. J. Mater. Res. 99 (2008) 36–41.
Google Scholar
[53]
A.M. Glezer, M.R. Plotnikova, A.V. Shalimova, S.V. Dobatkin, Bull. Russ. Ac. Sci. Phys. 73, (2009) 1233–1236.
Google Scholar
[54]
S. Hóbor, Á. Révész, A.P. Zhilyaev, Zs. Kovácz, Rev. Adv. Mater. Sci. 18 (2008) 590–592.
Google Scholar
[55]
Zs. Kovács, P. Henits, A.P. Zhilyaev, Á. Révész, Scripta Mater. 54 (2006) 1733–1737.
DOI: 10.1016/j.scriptamat.2006.02.004
Google Scholar
[56]
G.E. Abrosimova, A.S. Aronin, S.V. Dobatkin, S.D. Kaloshkin, D.V. Matveev, O.G. Rybchenko, E.V. Tatyanin, I.I. Zverkova, J. Metastab. Nanocryst. Mater. 24, (2005) 69–72.
DOI: 10.4028/www.scientific.net/jmnm.24-25.69
Google Scholar
[57]
Á. Révész, E. Schafler, Zs. Kovács, Appl. Phys. Lett. 92 (2008) 011910.
Google Scholar
[58]
S. Hóbor, Zs. Kovács, A.P. Zhilyaev, L.K. Varga, P. J. Szabó, Á. Révész, J. Phys. 240, 012153 (2010).
DOI: 10.1088/1742-6596/240/1/012153
Google Scholar
[59]
S. Hóbor, Á. Révész, P. J. Szabó, A.P. Zhilyaev, V. Kovács Kis, J.L. Lábár, Zs. Kovács, J. Appl. Phys. 104 (2008) 033525.
DOI: 10.1063/1.2964115
Google Scholar
[60]
P. Henits, Á. Révész, A.P. Zhilyaev, Zs. Kovács, J. Alloys Comp. 461, (2008) 195–199.
Google Scholar
[61]
Zs. Kovács, P. Henits, A.P. Zhilyaev, N.Q. Chinh, Á. Révész, Mater. Sci. Forum 519-521 (2006) 1329–1334.
DOI: 10.4028/www.scientific.net/msf.519-521.1329
Google Scholar
[62]
G. Martin, Phys. Rev. B 30 (1984) 1424–1436.
Google Scholar
[63]
B.B. Straumal, A.A. Mazilkin, B. Baretzky, E. Rabkin, R.Z. Valiev, Mater. Trans. 53 (2012) 63–71.
Google Scholar
[64]
B. B. Straumal, L. M. Klinger, L. S. Shvindlerman, Scripta metall. 17, (1983) 275–279.
Google Scholar
[65]
D.A. Molodov, B.B. Straumal, L.S. Shvindlerman, Scripta metal. 18, (1984) 207–211.
Google Scholar
[66]
G. Thomas, H. Mori, H. Fujita, Scripta Metall. 16, (1982) 589–592.
Google Scholar
[67]
A.A. Mazilkin, B.B. Straumal, M.V. Borodachenkova, R.Z. Valiev, O.A. Kogtenkova, B. Baretzky, Mater. Lett. 84 (2012) 63–65.
DOI: 10.1016/j.matlet.2012.06.026
Google Scholar
[68]
T.B. Massalski (Ed. ), Binary Alloy Phase Diagrams, 2nd ed., ASM International, Materials Park, OH, (1990).
Google Scholar
[69]
B.B. Straumal, A.R. Kilmametov, Yu.O. Kucheev, L. Kurmanaeva, Yu. Ivanisenko, B. Baretzky, A. Korneva, P. Zięba, D.A. Molodov, Mater. Lett. 118 (2014) 111–114.
DOI: 10.1016/j.matlet.2013.12.042
Google Scholar
[70]
B.B. Straumal, A.R. Kilmametov, A.A. Mazilkin, L. Kurmanaeva, Y. Ivanisenko, A. Korneva, P. Zięba, B. Baretzky, Mater. Lett. 138 (2014) 255–258.
DOI: 10.1016/j.matlet.2014.10.009
Google Scholar
[71]
B.B. Straumal, A.R. Kilmametov, Yu. O. Kucheev, K.I. Kolesnikova, A. Korneva, P. Zięba, B. Baretzky, JETP Lett. 100 (2014) 376–379.
DOI: 10.1134/s0021364014180106
Google Scholar
[72]
B.B. Straumal, A.R. Kilmametov, Yu. Ivanisenko, A.A. Mazilkin, O.A. Kogtenkova, L. Kurmanaeva, A. Korneva, P. Zięba, B. Baretzky, Int. J. Mater. Res. (former Zt. Metallkunde) 106 (2015) in press.
DOI: 10.1016/j.matlet.2014.10.009
Google Scholar
[73]
G. Thomas, H. Mori, H. Fujita, Scr. Metal. 16 (1982) 589–592.
Google Scholar
[74]
Z.S. Ji, M.L. Hu, X.P. Zheng, J. Mater. Sci. Technol. 23 (2007) 247–252.
Google Scholar
[75]
Y.A. Shatilla, E.P. Loewen, Nucl. Technol. 151 (2005) 239–249.
Google Scholar
[76]
M. Sagawa, S. Fujimura, N. Togawa, H. Yamamoto, Y. Matsuura, J. Appl. Phys. 55 (1984) 2083–(2087).
Google Scholar
[77]
U.R. Kattner, JOM 49(12) (1997) 14–19.
Google Scholar
[78]
N. Mattern, U. Kühn, A. Gebert, A. Schoeps, T. Gemminga, L. Schultz, Mater. Sci. Eng. A 449/451 (2007) 207–210.
Google Scholar
[79]
I. Gödény, D.L. Beke, F.J. Kedves, Phys. Stat. Sol. A 13 (1972) K155– K157.
DOI: 10.1002/pssa.2210130262
Google Scholar
[80]
N.L. Peterson, S.J. Rothman, Phys. Rev. B 1 (1970) 3264–3272.
Google Scholar
[81]
S.J. Rothman, N.L. Peterson, L.J. Nowicki, L.C. Robinson, Phys. Stat. Sol. B 63 (1974) K29–K33.
DOI: 10.1002/pssb.2220630151
Google Scholar
[82]
G. Saada, Acta Met. 9 (1961) 965–975.
Google Scholar
[83]
D.L. Beke, I. Gödény, F.J. Kedves, Phil. Mag. A. 47 (1983) 281–299.
Google Scholar
[84]
D.L. Beke, I. Gödény, F.J. Kedves, Trans. Jap. Inst. Met. Suppl. 27 (1986) 649–653.
Google Scholar
[85]
A.N. Aleshin, V. Yu. Aristov, B.S. Bokstein, L.S. Shvindlerman, Phys. Stat. Sol. A 45 (1978) 359–366.
Google Scholar
[86]
A.N. Aleshin, B.S. Bokstein, A.L. Petelin, L.S. Shvindlerman, Metallofiz. 2 (1980) 83–95.
Google Scholar
[87]
P. Zieba, A. Pawlowski, W. Gust, Def. Diff. Forum 194 (2001) 1759–1765.
Google Scholar
[88]
A. Häßner, Isotopenpraxis 5 (1969) 143–149.
Google Scholar
[89]
A. Häßner, Krist. Tech. 8 (1973) K1–K11.
Google Scholar
[90]
A. Häßner, Krist. Tech. 9 (1974) 1371–1379.
Google Scholar
[91]
T. Fujita, H. Hasegawa, Z. Horita, T.G. Langdon, Def. Diff. Forum 194 (2001) 1205–1210.
Google Scholar
[92]
T. Fujita, Z. Horita, T.G. Langdon, Phil. Mag. A 82 (2002) 2249–2262.
Google Scholar
[93]
T. Fujita, Z. Horita, T.G. Langdon, Mater. Sci. Forum 396 (2002) 1061–1066.
Google Scholar
[94]
A.B. Vladimirov, V.N. Kaygorodov, S.M. Klotsman, V.D. Symbelov, I.S. Trachtenberg, Phys. Metal. Metallogr. 39 (1) (1975) 78–82.
Google Scholar
[95]
H. Mehrer (Ed. ), Diffusion in Solid Metals and Alloys, Landolt-Börnstein New Series, Gr III, Vol. 26, Springer-Verlag, Berlin, (1990).
Google Scholar
[96]
H. -E. Schaefer, Phys. Stat. Sol. A 102 (1987) 47–65.
Google Scholar
[97]
S.V. Divinski, G. Reglitz, H. Rösner, Y. Estrin , G. Wilde, Acta. Mater. 59 (2011) 1974–(1985).
DOI: 10.1016/j.actamat.2010.11.063
Google Scholar
[98]
Y. Amouyal, S.V. Divinski, Y. Estrin, E. Rabkin, Acta Mater. 55 (2007) 5968–5979.
DOI: 10.1016/j.actamat.2007.07.026
Google Scholar
[99]
P. Bellon, R.S. Averback, Phys. Rev. Lett. 74 (1995) 1819–1822.
Google Scholar
[100]
G. Neumann, V. Tolle, Phil. Mag. A 57 (1988) 621–630.
Google Scholar
[101]
C.A. Mackliet, Phys. Rev. 109 (1958) 1964–(1970).
Google Scholar
[102]
S. Fujikawa, K.I. Hirano, in: J.I. Takamura, M. Doyama, M. Kiritani (Eds. ) Proc. of Yamada Vth Conf. on Point Defects, Defect Interactions in Metals, Univ. of Tokyo Press, Tokyo, 1982, p.554–558.
Google Scholar
[103]
T. Surholt, Chr. Herzig, Acta Mater. 45 (1997) 3817–3823.
Google Scholar
[104]
S. Divinski, J. Ribbe, G. Schmitz, Chr. Herzig, Acta Mater. 55 (2007) 3337–3346.
DOI: 10.1016/j.actamat.2007.01.032
Google Scholar
[105]
V.A. Gorbachev, S.M. Klotsman, Ya.A. Rabovskiy, V.K. Talinskiy, A.N. Timofeyev, Phys. Met. Metallogr. 34(4) (1972) 202–206.
Google Scholar
[106]
W. Gust, B. Predel, U. Roll, Acta Metall. 28 (1980) 1395–1405.
Google Scholar