Evolution of Nanoporous Surface Layers on Gas-Atomized Ti60Cu39Au1 Powders during Dealloying

Nanoporous golf ball-shaped powders with a surface porous layer consisting of fcc Cu and Cu3Au phases have been fabricated by selectively dissolving gas-atomized Ti60Cu39Au1 powders in 0.13 M HF solution. The distribution profiles of the Ti2Cu and TiCu intermetallic phases and powder size play an im...

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Main Authors: Zhenhua Dan, Jiahui Qu, Yulin Yang, Fengxiang Qin, Hui Chang
Format: Article
Language:English
Published: MDPI AG 2018-07-01
Series:Nanomaterials
Subjects:
Online Access:http://www.mdpi.com/2079-4991/8/8/581
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spelling doaj-78902ae9c5c54e14b91b5bceaf626cdd2020-11-24T23:39:28ZengMDPI AGNanomaterials2079-49912018-07-018858110.3390/nano8080581nano8080581Evolution of Nanoporous Surface Layers on Gas-Atomized Ti60Cu39Au1 Powders during DealloyingZhenhua Dan0Jiahui Qu1Yulin Yang2Fengxiang Qin3Hui Chang4Tech Institute for Advanced Materials, College of Materials Science and Engineering, Nanjing Tech University, Nanjing 210009, ChinaTech Institute for Advanced Materials, College of Materials Science and Engineering, Nanjing Tech University, Nanjing 210009, ChinaTech Institute for Advanced Materials, College of Materials Science and Engineering, Nanjing Tech University, Nanjing 210009, ChinaSchool of Materials Science and Engineering, Nanjing University of Science and Technology, Nanjing 210094, ChinaTech Institute for Advanced Materials, College of Materials Science and Engineering, Nanjing Tech University, Nanjing 210009, ChinaNanoporous golf ball-shaped powders with a surface porous layer consisting of fcc Cu and Cu3Au phases have been fabricated by selectively dissolving gas-atomized Ti60Cu39Au1 powders in 0.13 M HF solution. The distribution profiles of the Ti2Cu and TiCu intermetallic phases and powder size play an important role of the propagation of the selective corrosion frontiers. The final nanoporous structure has a bimodal characteristic with a finer nanoporous structure at the ridges, and rougher structure at the shallow pits. The powders with a size of 18–75 m dealloy faster due to their high crystallinity and larger powder size, and these with a powder size of smaller than 18 m tend to deepen uniformly. The formation of the Cu3Au intermetallic phases and the finer nanoporous structure at the ridges proves that minor Au addition inhibits the fast diffusion of Cu adatoms and decreases surface diffusion by more than two orders. The evolution of the surface nanoporous structure with negative tree-like structures is considered to be controlled by a percolation dissolution mechanism.http://www.mdpi.com/2079-4991/8/8/581gas-atomized powderporous materialpercolation dissolutionintermetallic phasedealloying
collection DOAJ
language English
format Article
sources DOAJ
author Zhenhua Dan
Jiahui Qu
Yulin Yang
Fengxiang Qin
Hui Chang
spellingShingle Zhenhua Dan
Jiahui Qu
Yulin Yang
Fengxiang Qin
Hui Chang
Evolution of Nanoporous Surface Layers on Gas-Atomized Ti60Cu39Au1 Powders during Dealloying
Nanomaterials
gas-atomized powder
porous material
percolation dissolution
intermetallic phase
dealloying
author_facet Zhenhua Dan
Jiahui Qu
Yulin Yang
Fengxiang Qin
Hui Chang
author_sort Zhenhua Dan
title Evolution of Nanoporous Surface Layers on Gas-Atomized Ti60Cu39Au1 Powders during Dealloying
title_short Evolution of Nanoporous Surface Layers on Gas-Atomized Ti60Cu39Au1 Powders during Dealloying
title_full Evolution of Nanoporous Surface Layers on Gas-Atomized Ti60Cu39Au1 Powders during Dealloying
title_fullStr Evolution of Nanoporous Surface Layers on Gas-Atomized Ti60Cu39Au1 Powders during Dealloying
title_full_unstemmed Evolution of Nanoporous Surface Layers on Gas-Atomized Ti60Cu39Au1 Powders during Dealloying
title_sort evolution of nanoporous surface layers on gas-atomized ti60cu39au1 powders during dealloying
publisher MDPI AG
series Nanomaterials
issn 2079-4991
publishDate 2018-07-01
description Nanoporous golf ball-shaped powders with a surface porous layer consisting of fcc Cu and Cu3Au phases have been fabricated by selectively dissolving gas-atomized Ti60Cu39Au1 powders in 0.13 M HF solution. The distribution profiles of the Ti2Cu and TiCu intermetallic phases and powder size play an important role of the propagation of the selective corrosion frontiers. The final nanoporous structure has a bimodal characteristic with a finer nanoporous structure at the ridges, and rougher structure at the shallow pits. The powders with a size of 18–75 m dealloy faster due to their high crystallinity and larger powder size, and these with a powder size of smaller than 18 m tend to deepen uniformly. The formation of the Cu3Au intermetallic phases and the finer nanoporous structure at the ridges proves that minor Au addition inhibits the fast diffusion of Cu adatoms and decreases surface diffusion by more than two orders. The evolution of the surface nanoporous structure with negative tree-like structures is considered to be controlled by a percolation dissolution mechanism.
topic gas-atomized powder
porous material
percolation dissolution
intermetallic phase
dealloying
url http://www.mdpi.com/2079-4991/8/8/581
work_keys_str_mv AT zhenhuadan evolutionofnanoporoussurfacelayersongasatomizedti60cu39au1powdersduringdealloying
AT jiahuiqu evolutionofnanoporoussurfacelayersongasatomizedti60cu39au1powdersduringdealloying
AT yulinyang evolutionofnanoporoussurfacelayersongasatomizedti60cu39au1powdersduringdealloying
AT fengxiangqin evolutionofnanoporoussurfacelayersongasatomizedti60cu39au1powdersduringdealloying
AT huichang evolutionofnanoporoussurfacelayersongasatomizedti60cu39au1powdersduringdealloying
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