Dynamic osteosynthesis from stiff to biological fixation with graded moduli multilayer coatings on magnesium implant

Over the years, osteosynthesis has been emphasizing mechanical stability of fragments to achieve stiff fixation, i.e., tight fixation of metallic implant. This, however, creates permanent stress-shielding because of the high modulus materials used (stainless steel or Ti implant), which easily leads...

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Main Authors: Peng, Cheng, Wei, Qiang, Li, Xiaoyue, Zhang, Sam, Liu, Aifeng
Other Authors: School of Mechanical and Aerospace Engineering
Format: Article
Language:English
Published: 2015
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Online Access:https://hdl.handle.net/10356/104311
http://hdl.handle.net/10220/25994
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-1043112020-03-07T13:22:23Z Dynamic osteosynthesis from stiff to biological fixation with graded moduli multilayer coatings on magnesium implant Peng, Cheng Wei, Qiang Li, Xiaoyue Zhang, Sam Liu, Aifeng School of Mechanical and Aerospace Engineering DRNTU::Engineering::Nanotechnology Over the years, osteosynthesis has been emphasizing mechanical stability of fragments to achieve stiff fixation, i.e., tight fixation of metallic implant. This, however, creates permanent stress-shielding because of the high modulus materials used (stainless steel or Ti implant), which easily leads to osteoporosis and even re-fracture after healing. Recent studies thus turn to flexible fixation using biologically degradable materials such as magnesium. This, however, deprives stiff fixation of the local stability advantage badly needed during early healing of bone tissues due to adopting low modulus of metallic magnesium. At present, Magnesium and its alloys attracted more concern of researchers on surface nano-crystallization, amorphization and coating for corrosion. The structure design of Mg implant is few that match healing process of bone. In this paper, the multilayer coatings of Fe/Zn are electroplated on Mg implant to take advantage of the biodegradability of Mg, Zn, Fe and the stiffness of Fe. In vivo study of the coated implant in rats suggests a combination of early stiff fixation and later stage biodegradation. 2015-06-22T07:35:54Z 2019-12-06T21:30:12Z 2015-06-22T07:35:54Z 2019-12-06T21:30:12Z 2015 2015 Journal Article Peng, C., Wei, Q., Li, X., Zhang, S., & Liu, A. (2015). Dynamic osteosynthesis from stiff to biological fixation with graded moduli multilayer coatings on magnesium implant. Nanoscience and nanotechnology letters, 7(3), 209-214. 1941-4900 https://hdl.handle.net/10356/104311 http://hdl.handle.net/10220/25994 10.1166/nnl.2015.1971 en Nanoscience and nanotechnology letters © 2015 American Scientific Publishers.
institution Nanyang Technological University
building NTU Library
country Singapore
collection DR-NTU
language English
topic DRNTU::Engineering::Nanotechnology
spellingShingle DRNTU::Engineering::Nanotechnology
Peng, Cheng
Wei, Qiang
Li, Xiaoyue
Zhang, Sam
Liu, Aifeng
Dynamic osteosynthesis from stiff to biological fixation with graded moduli multilayer coatings on magnesium implant
description Over the years, osteosynthesis has been emphasizing mechanical stability of fragments to achieve stiff fixation, i.e., tight fixation of metallic implant. This, however, creates permanent stress-shielding because of the high modulus materials used (stainless steel or Ti implant), which easily leads to osteoporosis and even re-fracture after healing. Recent studies thus turn to flexible fixation using biologically degradable materials such as magnesium. This, however, deprives stiff fixation of the local stability advantage badly needed during early healing of bone tissues due to adopting low modulus of metallic magnesium. At present, Magnesium and its alloys attracted more concern of researchers on surface nano-crystallization, amorphization and coating for corrosion. The structure design of Mg implant is few that match healing process of bone. In this paper, the multilayer coatings of Fe/Zn are electroplated on Mg implant to take advantage of the biodegradability of Mg, Zn, Fe and the stiffness of Fe. In vivo study of the coated implant in rats suggests a combination of early stiff fixation and later stage biodegradation.
author2 School of Mechanical and Aerospace Engineering
author_facet School of Mechanical and Aerospace Engineering
Peng, Cheng
Wei, Qiang
Li, Xiaoyue
Zhang, Sam
Liu, Aifeng
format Article
author Peng, Cheng
Wei, Qiang
Li, Xiaoyue
Zhang, Sam
Liu, Aifeng
author_sort Peng, Cheng
title Dynamic osteosynthesis from stiff to biological fixation with graded moduli multilayer coatings on magnesium implant
title_short Dynamic osteosynthesis from stiff to biological fixation with graded moduli multilayer coatings on magnesium implant
title_full Dynamic osteosynthesis from stiff to biological fixation with graded moduli multilayer coatings on magnesium implant
title_fullStr Dynamic osteosynthesis from stiff to biological fixation with graded moduli multilayer coatings on magnesium implant
title_full_unstemmed Dynamic osteosynthesis from stiff to biological fixation with graded moduli multilayer coatings on magnesium implant
title_sort dynamic osteosynthesis from stiff to biological fixation with graded moduli multilayer coatings on magnesium implant
publishDate 2015
url https://hdl.handle.net/10356/104311
http://hdl.handle.net/10220/25994
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