No CrossRef data available.
Article contents
Direct electron imaging of dislocation activities in nanocrystalline molybdenum nanopillars
Published online by Cambridge University Press: 30 July 2021
Abstract
An abstract is not available for this content so a preview has been provided. As you have access to this content, a full PDF is available via the ‘Save PDF’ action button.
- Type
- Defects in Materials: How We See and Understand Them
- Information
- Copyright
- Copyright © The Author(s), 2021. Published by Cambridge University Press on behalf of the Microscopy Society of America
References
Meyers, M.A., Mishra, A., and Benson, D.J., Mechanical properties of nanocrystalline materials. Progress in Materials Science, 2006. 51(4): p. 427-556.CrossRefGoogle Scholar
Wei, Q., et al. , Effect of nanocrystalline and ultrafine grain sizes on the strain rate sensitivity and activation volume: fcc versus bcc metals. Materials Science and Engineering: A, 2004. 381(1): p. 71-79.CrossRefGoogle Scholar
Cheng, G.M., et al. , Grain Size Effect on Deformation Mechanisms of Nanocrystalline bcc Metals. Materials Research Letters, 2013. 1(1): p. 26-31.CrossRefGoogle Scholar
Huang, R., et al. , Flow Stress in Submicron BCC Iron Single Crystals: Sample-size-dependent Strain-rate Sensitivity and Rate-dependent Size Strengthening. Materials Research Letters, 2015. 3(3): p. 121-127.CrossRefGoogle Scholar
Schneider, A.S., et al. , Correlation between Critical Temperature and Strength of Small-Scale bcc Pillars. Physical Review Letters, 2009. 103(10): p. 105501.CrossRefGoogle ScholarPubMed
Zuo, J.-M., Electron Nanodiffraction, in Springer Handbook of Microscopy, Hawkes, P.W. and Spence, J.C.H., Editors. 2019, Springer International Publishing: Cham. p. 905-969.CrossRefGoogle Scholar
Hsiao, H.-W., et al. , Shear banding mechanism in compressed nanocrystalline ceramic nanopillars. Physical Review Materials, 2019. 3(8): p. 083601.CrossRefGoogle Scholar
You have
Access