Microstructures and strengthening mechanisms of Cu/Ni/W nanolayered composites


Autoria(s): Yan, J.W.; Zhang, G.P.; Zhu, X.F.; Liu, H.S.; Yan, C.
Data(s)

17/09/2013

Resumo

Cu/Ni/W nanolayered composites with individual layer thickness ranging from 5nm to 300nm were prepared by a magnetron sputtering system. Microstructures and strength of the nanolayered composites were investigated by using the nanoindentation method combined with theoretical analysis. Microstructure characterization revealed that the Cu/Ni/W composite consists of a typical Cu/Ni coherent interface and Cu/W and Ni/W incoherent interfaces. Cu/Ni/W composites have an ultrahigh strength and a large strengthening ability compared with bi-constituent Cu–X(X¼Ni, W, Au, Ag, Cr, Nb, etc.) nanolayered composites. Summarizing the present results and those reported in the literature, we systematically analyze the origin of the ultrahigh strength and its length scale dependence by taking into account the constituent layer properties, layer scales and heterogeneous layer/layer interface characteristics, including lattice and modulus mismatch as well as interface structure.

Formato

application/pdf

Identificador

http://eprints.qut.edu.au/58391/

Publicador

Taylor & Francis

Relação

http://eprints.qut.edu.au/58391/1/Final_version_Philosophical_Magazine_Cheng_Yan.pdf

DOI:10.1080/14786435.2012.722233

Yan, J.W., Zhang, G.P., Zhu, X.F., Liu, H.S., & Yan, C. (2013) Microstructures and strengthening mechanisms of Cu/Ni/W nanolayered composites. Philosophical Magazine, 93(5), pp. 434-448.

Direitos

Copyright 2013 Taylor & Francis

This is a preprint of an article submitted for consideration in the Philosophical Magazine © 2012[copyright Taylor & Francis]; Philosophical Magazine is available online at: www.tandfonline.com

Fonte

School of Chemistry, Physics & Mechanical Engineering; Science & Engineering Faculty

Palavras-Chave #091202 Composite and Hybrid Materials #091308 Solid Mechanics #metallic nanolayered composite #strength #length scale #interface #dislocation
Tipo

Journal Article