© 2018 National Technology & Engineering Solutions of Sandia, LLC. Published by WILEY-VCH Verlag GmbH & Co. KGaA, Weinheim Recent work suggests that thermally stable nanocrystallinity in metals is achievable in several binary alloys by modifying grain boundary energies via solute segregation. The remarkable thermal stability of these alloys has been demonstrated in recent reports, with many alloys exhibiting negligible grain growth during prolonged exposure to near-melting temperatures. Pt–Au, a proposed stable alloy consisting of two noble metals, is shown to exhibit extraordinary resistance to wear. Ultralow wear rates, less than a monolayer of material removed per sliding pass, are measured for Pt–Au thin films at a maximum Hertz con...
Abstract Nanocrystalline metals are transitioning from laboratory curiosities to engi...
A nanocrystalline (NC) layer with the thickness of 30 μm was produced on pure titanium surface by su...
*Signatures are on file in the Graduate School iii Thin films are present in virtually every corner ...
Nanocrystalline metals exhibit exceptional mechanical properties, such as high strength and wear res...
Metals and alloys with grain sizes below a hundred nanometers exhibit very different mechanical and ...
Nanocrystalline Al-Ni-Gd-Co alloys with exceptionally high hardness have been recently developed fro...
The most prominent property of nanocrystalline metals is their ultra-high strength, which makes them...
Wear-resistant metals have long been a pursuit of reducing wear-related energy and material loss. He...
Sliding wear of nanocrystalline Ni–W alloys with grain sizes of 3–47 nm, a range which spans the tra...
d o tura Co olut tals wi are c oatings mise o del th wear resistant than their microcrystalline coun...
The implementation of nanocrystalline metals is of growing interest in a variety of applications due...
Nanocrystalline materials are structurally characterised by a large density of grain boundaries whic...
Abstract Most metals and alloys suffer from high friction and wear due to their low hardness and lac...
Sliding friction of metallic materials results in severe plastic deformation of the contacting surfa...
The materials engineering of platinum jewelry is interesting because only 5wt% can be used for alloy...
Abstract Nanocrystalline metals are transitioning from laboratory curiosities to engi...
A nanocrystalline (NC) layer with the thickness of 30 μm was produced on pure titanium surface by su...
*Signatures are on file in the Graduate School iii Thin films are present in virtually every corner ...
Nanocrystalline metals exhibit exceptional mechanical properties, such as high strength and wear res...
Metals and alloys with grain sizes below a hundred nanometers exhibit very different mechanical and ...
Nanocrystalline Al-Ni-Gd-Co alloys with exceptionally high hardness have been recently developed fro...
The most prominent property of nanocrystalline metals is their ultra-high strength, which makes them...
Wear-resistant metals have long been a pursuit of reducing wear-related energy and material loss. He...
Sliding wear of nanocrystalline Ni–W alloys with grain sizes of 3–47 nm, a range which spans the tra...
d o tura Co olut tals wi are c oatings mise o del th wear resistant than their microcrystalline coun...
The implementation of nanocrystalline metals is of growing interest in a variety of applications due...
Nanocrystalline materials are structurally characterised by a large density of grain boundaries whic...
Abstract Most metals and alloys suffer from high friction and wear due to their low hardness and lac...
Sliding friction of metallic materials results in severe plastic deformation of the contacting surfa...
The materials engineering of platinum jewelry is interesting because only 5wt% can be used for alloy...
Abstract Nanocrystalline metals are transitioning from laboratory curiosities to engi...
A nanocrystalline (NC) layer with the thickness of 30 μm was produced on pure titanium surface by su...
*Signatures are on file in the Graduate School iii Thin films are present in virtually every corner ...