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Original Articles

Temperature dependence of the yield stress of metallic nano-sized crystals

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Pages 3049-3058 | Received 02 Dec 2008, Accepted 10 Jul 2009, Published online: 26 Oct 2009

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Read on this site (4)

Sergiy Kotrechko, Oleksandr Ovsjannikov, Tatjana Mazilova, Igor Mikhailovskij, Evgenij Sadanov & Nataliya Stetsenko. (2017) Inherent hydrostatic tensile strength of tungsten nanocrystals. Philosophical Magazine 97:12, pages 930-943.
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G. Sainath & B. K. Choudhary. (2016) Deformation behaviour of body centered cubic iron nanopillars containing coherent twin boundaries. Philosophical Magazine 96:32-34, pages 3502-3523.
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S. Kotrechko, O. Ovsjannikov, N. Stetsenko, I. Mikhailovskij, T. Mazilova & M. Starostenkov. (2016) Yield strength temperature dependence of tungsten nanosized crystals: experiment and simulation. Philosophical Magazine 96:5, pages 473-485.
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T.I. Mazilova, V.A. Ksenofontov, V.N. Voyevodin, E.V. Sadanov & I.M. Mikhailovskij. (2011) Mechanical recrystallization of ultra-strength tungsten nanoneedles. Philosophical Magazine Letters 91:4, pages 304-312.
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Articles from other publishers (17)

Gang LEI, Hai-tao GAO, Yun ZHANG, Xiao-hui CUI & Hai-liang YU. (2023) Atomic-level insights on enhanced strength and ductility of Al−Mg−Si alloys with β″-Mg5Si6 at cryogenic temperatures. Transactions of Nonferrous Metals Society of China 33:10, pages 2943-2954.
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Qian Wang, Ninshu Ma, Makoto Takahashi, Xiaotao Luo & Changjiu Li. (2020) Development of a material model for predicting extreme deformation and grain refinement during cold spraying. Acta Materialia 199, pages 326-339.
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Lanting Liu, Qiong Deng, Mengjia Su, Minrong An & Ruifeng Wang. (2019) Strain rate and temperature effects on tensile behavior of Ti/Al multilayered nanowire: A molecular dynamics study. Superlattices and Microstructures 135, pages 106272.
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Dan Mordehai, Omer David & Roman Kositski. (2018) Nucleation-Controlled Plasticity of Metallic Nanowires and Nanoparticles. Advanced Materials 30:41, pages 1706710.
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Sergiy Kotrechko, Olexandr Ovsijannikov, Igor Mikhailovskij & Nataliya Stetsenko. 2018. Molecular Dynamics. Molecular Dynamics.
S. K. Deb Nath. (2017) Mechanical properties of nano and bulk Fe pillars using molecular dynamics and dislocation dynamics simulation. AIP Advances 7:10.
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T.H. Xu, Z.Q. Zhu, S.F. Geng & H.Y. Song. (2017) Molecular dynamics study of effect of hydrogen atoms on mechanical properties of α -Fe nanowires. Physics Letters A 381:37, pages 3222-3227.
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G. Sainath & B. K. Choudhary. (2017) Atomistic simulations on ductile-brittle transition in ⟨111⟩ BCC Fe nanowires. Journal of Applied Physics 122:9.
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S. Kotrechko, A. Timoshevskii, I. Mikhailovskij, T. Mazilova, N. Stetsenko, O. Ovsijannikov & V. Lidych. (2015) Atomic mechanisms governing upper limit on the strength of nanosized crystals. Engineering Fracture Mechanics 150, pages 184-196.
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G. Sainath, B.K. Choudhary & T. Jayakumar. (2015) Molecular dynamics simulation studies on the size dependent tensile deformation and fracture behaviour of body centred cubic iron nanowires. Computational Materials Science 104, pages 76-83.
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Tatjana I. Mazilova, Igor M. Mikhailovskij & Evgenij V. Sadanov. 2015. Handbook of Mechanical Nanostructuring. Handbook of Mechanical Nanostructuring 67 80 .
Tianbao Cheng & Weiguo Li. (2015) The Temperature-Dependent Ideal Tensile Strength of ZrB 2 , HfB 2 , and TiB 2 . Journal of the American Ceramic Society 98:1, pages 190-196.
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Tianbao Cheng, Weiguo Li & Daining Fang. (2014) Modeling of the temperature-dependent ideal tensile strength of solids. Physica Scripta 89:8, pages 085803.
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S. Kotrechko, A. Timoshevskij, S. Yablonovskii, I. Mikhailovskij, T. Mazilova & V. Lidych. (2014) The Absolute Upper Limit of Material Strength and Ways to Reach it. Procedia Materials Science 3, pages 391-396.
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Sergiy Kotrechko, Igor Mikhailovskij, Tatiana Mazilova & Oleksandr Ovsjannikov. (2013) Strength Hierarchy for Nano-Sized Crystals. Key Engineering Materials 592-593, pages 301-306.
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I. M. Mikhailovskij, E. V. Sadanov, S. Kotrechko, V. A. Ksenofontov & T. I. Mazilova. (2013) Measurement of the inherent strength of carbon atomic chains. Physical Review B 87:4.
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S. A. Kotrechko, A. A. Mazilov, T. I. Mazilova, E. V. Sadanov & I. M. Mikhailovskij. (2012) Experimental determination of the mechanical strength of monatomic carbon chains. Technical Physics Letters 38:2, pages 132-134.
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