Tuning the Mechanical and Antimicrobial Performance of a Cu-Based Metallic Glass Composite through Cooling Rate Control and Annealing

The influence of cooling rate on the wear and antimicrobial performance of a Cu52Z41Al7 (at. %) bulk metallic glass (BMG) composite was studied and the results compared to those of the annealed sample (850 °C for 48 h) and to pure copper. The aim of this basic research is to explore the potential us...

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Main Authors: Victor M. Villapún, F. Esat, S. Bull, L.G. Dover, S. González
Format: Article
Language:English
Published: MDPI AG 2017-05-01
Series:Materials
Subjects:
Online Access:http://www.mdpi.com/1996-1944/10/5/506
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spelling doaj-b64e5c528d514cf69f787d4ebf8bdcdc2020-11-24T23:01:46ZengMDPI AGMaterials1996-19442017-05-0110550610.3390/ma10050506ma10050506Tuning the Mechanical and Antimicrobial Performance of a Cu-Based Metallic Glass Composite through Cooling Rate Control and AnnealingVictor M. Villapún0F. Esat1S. Bull2L.G. Dover3S. González4Faculty of Engineering and Environment, Northumbria University, Newcastle upon Tyne NE1 8ST, UKSchool of Chemical and Process Engineering, University of Leeds, Leeds LS2 9JT, UKNewcastle University, School of Chemical Engineering and Advanced Materials, Newcastle upon Tyne NE1 7RU, UKFaculty of Health and Life Sciences, Northumbria University, Newcastle upon Tyne NE1 8ST, UKFaculty of Engineering and Environment, Northumbria University, Newcastle upon Tyne NE1 8ST, UKThe influence of cooling rate on the wear and antimicrobial performance of a Cu52Z41Al7 (at. %) bulk metallic glass (BMG) composite was studied and the results compared to those of the annealed sample (850 °C for 48 h) and to pure copper. The aim of this basic research is to explore the potential use of the material in preventing the spread of infections. The cooling rate is controlled by changing the mould diameter (2 mm and 3 mm) upon suction casting and controlling the mould temperature (chiller on and off). For the highest cooling rate conditions CuZr is formed but CuZr2 starts to crystallise as the cooling rate decreases, resulting in an increase in the wear resistance and brittleness, as measured by scratch tests. A decrease in the cooling rate also increases the antimicrobial performance, as shown by different methodologies (European, American and Japanese standards). Annealing leads to the formation of new intermetallic phases (Cu10Zr7 and Cu2ZrAl) resulting in maximum scratch hardness and antimicrobial performance. However, the annealed sample corrodes during the antimicrobial tests (within 1 h of contact with broth). The antibacterial activity of copper was proved to be higher than that of any of the other materials tested but it exhibits very poor wear properties. Cu-rich BMG composites with optimised microstructure would be preferable for some applications where the durability requirements are higher than the antimicrobial needs.http://www.mdpi.com/1996-1944/10/5/506tribological propertiesantimicrobial behaviourmetallic glass compositescratch testscratch hardness
collection DOAJ
language English
format Article
sources DOAJ
author Victor M. Villapún
F. Esat
S. Bull
L.G. Dover
S. González
spellingShingle Victor M. Villapún
F. Esat
S. Bull
L.G. Dover
S. González
Tuning the Mechanical and Antimicrobial Performance of a Cu-Based Metallic Glass Composite through Cooling Rate Control and Annealing
Materials
tribological properties
antimicrobial behaviour
metallic glass composite
scratch test
scratch hardness
author_facet Victor M. Villapún
F. Esat
S. Bull
L.G. Dover
S. González
author_sort Victor M. Villapún
title Tuning the Mechanical and Antimicrobial Performance of a Cu-Based Metallic Glass Composite through Cooling Rate Control and Annealing
title_short Tuning the Mechanical and Antimicrobial Performance of a Cu-Based Metallic Glass Composite through Cooling Rate Control and Annealing
title_full Tuning the Mechanical and Antimicrobial Performance of a Cu-Based Metallic Glass Composite through Cooling Rate Control and Annealing
title_fullStr Tuning the Mechanical and Antimicrobial Performance of a Cu-Based Metallic Glass Composite through Cooling Rate Control and Annealing
title_full_unstemmed Tuning the Mechanical and Antimicrobial Performance of a Cu-Based Metallic Glass Composite through Cooling Rate Control and Annealing
title_sort tuning the mechanical and antimicrobial performance of a cu-based metallic glass composite through cooling rate control and annealing
publisher MDPI AG
series Materials
issn 1996-1944
publishDate 2017-05-01
description The influence of cooling rate on the wear and antimicrobial performance of a Cu52Z41Al7 (at. %) bulk metallic glass (BMG) composite was studied and the results compared to those of the annealed sample (850 °C for 48 h) and to pure copper. The aim of this basic research is to explore the potential use of the material in preventing the spread of infections. The cooling rate is controlled by changing the mould diameter (2 mm and 3 mm) upon suction casting and controlling the mould temperature (chiller on and off). For the highest cooling rate conditions CuZr is formed but CuZr2 starts to crystallise as the cooling rate decreases, resulting in an increase in the wear resistance and brittleness, as measured by scratch tests. A decrease in the cooling rate also increases the antimicrobial performance, as shown by different methodologies (European, American and Japanese standards). Annealing leads to the formation of new intermetallic phases (Cu10Zr7 and Cu2ZrAl) resulting in maximum scratch hardness and antimicrobial performance. However, the annealed sample corrodes during the antimicrobial tests (within 1 h of contact with broth). The antibacterial activity of copper was proved to be higher than that of any of the other materials tested but it exhibits very poor wear properties. Cu-rich BMG composites with optimised microstructure would be preferable for some applications where the durability requirements are higher than the antimicrobial needs.
topic tribological properties
antimicrobial behaviour
metallic glass composite
scratch test
scratch hardness
url http://www.mdpi.com/1996-1944/10/5/506
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