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Original Articles

Energies of conservative and non-conservative antiphase boundaries in Ti3Al: a first principles study

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Pages 1243-1259 | Received 08 Aug 2005, Accepted 27 Sep 2005, Published online: 21 Aug 2006

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Read on this site (3)

Yuichiro Koizumi, Masato Yoshiya, Atsushi Sugihara & Yoritoshi Minamino. (2011) Effect of impurity atoms on α2/γ lamellar interfacial misfit in Ti–Al alloy: a systematic first principles study. Philosophical Magazine 91:28, pages 3685-3704.
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Yuichiro Koizumi, Masataka Mizuno, Atsushi Sugihara, Yoritoshi Minamino & Yasuharu Shirai. (2010) Effects of substitutional impurity Au and Si atoms on antiphase boundary energies in Ti3Al: A first principles study. Philosophical Magazine 90:29, pages 3919-3934.
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Y. Koizumi, Y. Minamino, T. Nakano & Y. Umakoshi. (2008) Effects of antiphase domains on dislocation motion in Ti3Al single crystals deformed by prism slip. Philosophical Magazine 88:4, pages 465-488.
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Articles from other publishers (12)

Ajit BeheraAjit Behera. 2022. Advanced Materials. Advanced Materials 617 635 .
A.R. Khalikov, M.D. Starostenkov, E.A. Korznikova, E.A. Sharapov & S.V. Dmitriev. (2021) Structure and energy of planar superstructure defects in X2YZ Heusler alloys. Intermetallics 137, pages 107276.
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Qing-Xiang Pei, M.H. Jhon, Siu Sin Quek & Zhaoxuan Wu. (2021) A systematic study of interatomic potentials for mechanical behaviours of Ti-Al alloys. Computational Materials Science 188, pages 110239.
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M. Dodaran, A. Hemmasian Ettefagh, S.M. Guo, M.M. Khonsari, W.J. Meng, N. Shamsaei & S. Shao. (2020) Effect of alloying elements on the γ’ antiphase boundary energy in Ni-base superalloys. Intermetallics 117, pages 106670.
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F. Appel, H. Clemens & F.D. Fischer. (2016) Modeling concepts for intermetallic titanium aluminides. Progress in Materials Science 81, pages 55-124.
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Dai-Xiu Wei, Yuichiro Koizumi, Hiroaki Nishiyama, Akinori Yamanaka, Masahiko Yoshino, Shinpei Miyamoto, Kyosuke Yoshimi & Akihiko Chiba. (2014) Nanoplastic deformation on Ti–39 at.% Al single crystals for manipulation of every single γ lamella. Acta Materialia 76, pages 331-341.
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L E Karkina & L I Yakovenkova. (2012) Dislocation core structure and deformation behavior of Ti 3 Al . Modelling and Simulation in Materials Science and Engineering 20:6, pages 065003.
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Fritz Appel, Jonathan David Heaton Paul & Michael Oehring. 2011. Gamma Titanium Aluminide Alloys. Gamma Titanium Aluminide Alloys 71 124 .
Tetsuo Mohri. (2010) First-principles calculation of microstructural processes in alloys. Computational Materials Science 49:4, pages S181-S186.
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Jayanta Das, Ralf Theissmann, Wolfgang Löser & Jurgen Eckert. (2011) Effect of Sn on microstructure and mechanical properties of Ti-Fe-(Sn) ultrafine eutectic composites. Journal of Materials Research 25:5, pages 943-956.
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J. Das, F. Ettingshausen & J. Eckert. (2008) Ti-base nanoeutectic-hexagonal structured (D019) dendrite composite. Scripta Materialia 58:8, pages 631-634.
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Yuichiro Koizumi, Kazuki Iwamoto, Takayuki Tanaka, Nobuhiro Tsuji & Yoritoshi Minamino. (2008) Evolution of antiphase domain (APD)/lamella mixed microstructure in Ti–39 at%Al single crystals. Materials Science and Engineering: A 478:1-2, pages 147-153.
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