A Review on Additive Manufacturing of Shape-Memory Materials for Biomedical Applications

Shape-memory materials (SMMs) are characterized by their unique ability to remember and recover their shape in response to external stimuli. Over recent decades, the use of SMMs in biomedical areas such as tissue engineering, drug delivery, endovascular surgery, orthodontics, orthopedics, etc. has a...

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Veröffentlicht in:JOM (1989) 2020-03, Vol.72 (3), p.1229-1253
Hauptverfasser: Sabahi, Nasim, Chen, Wenliang, Wang, Chun-Hui, Kruzic, Jamie J., Li, Xiaopeng
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container_issue 3
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container_title JOM (1989)
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creator Sabahi, Nasim
Chen, Wenliang
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Kruzic, Jamie J.
Li, Xiaopeng
description Shape-memory materials (SMMs) are characterized by their unique ability to remember and recover their shape in response to external stimuli. Over recent decades, the use of SMMs in biomedical areas such as tissue engineering, drug delivery, endovascular surgery, orthodontics, orthopedics, etc. has attracted significant attention from both academia and industry. Recently, additive manufacturing (AM) has also attracted growing interest for biomedical applications because of its ability to produce on-demand, patient-tailored devices for medical treatments. This article provides a review of current state-of-the-art AM techniques for producing SMMs for biomedical applications. First, both shape-memory alloys and shape-memory polymers are discussed regarding their fundamental characteristics and compositions, and the general principles governing their shape-memory effects. Next, current and potential biomedical applications of SMMs are presented, then available AM techniques that have been used for the fabrication of SMM-based medical devices are discussed and explored. Finally, an outlook on AM of SMMs for biomedical applications is provided.
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subjects Additive manufacturing
Advanced Manufacturing for Biomaterials and Biological Materials
Biocompatibility
Biomedical engineering
Biomedical materials
Chemistry/Food Science
Cooling
Drug delivery systems
Earth Sciences
Engineering
Environment
Heat treating
Magnetic resonance imaging
Medical device industry
Medical devices
Medical electronics
Medical equipment
Orthodontics
Orthopedics
Physics
Polymers
Shape effects
Shape memory alloys
Temperature
Tissue engineering
title A Review on Additive Manufacturing of Shape-Memory Materials for Biomedical Applications
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