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Auxetic Metamaterials for Biomedical Devices: Current Situation, Main Challenges, and Research Trends

期刊

MATERIALS
卷 15, 期 4, 页码 -

出版社

MDPI
DOI: 10.3390/ma15041439

关键词

auxetics; metamaterials; biomedical devices; additive manufacturing; microfabrication; tissue engineering; computational modelling

资金

  1. Regional Government of Madrid [Y2020/BIO-6756, 2018-020023109, 2013-010001672, 2013-010001541]

向作者/读者索取更多资源

Auxetic metamaterials with a negative Poisson ratio have the properties of lateral expansion when stretched and densification when compressed. Due to their similarity to biological tissues, auxetics have potential applications in the field of medicine. This research study provides a comprehensive overview of auxetic metamaterials in biomedical devices, including prosthetics, orthotics, ergonomic appliances, in vitro medical devices, and tissue engineering scaffolds.
Auxetic metamaterials are characterized by a negative Poisson ratio (NPR) and display an unexpected property of lateral expansion when stretched and densification when compressed. Auxetic properties can be achieved by designing special microstructures, hence their classification as metamaterials, and can be manufactured with varied raw materials and methods. Since work in this field began, auxetics have been considered for different biomedical applications, as some biological tissues have auxetic-like behaviour due to their lightweight structure and morphing properties, which makes auxetics ideal for interacting with the human body. This research study is developed with the aim of presenting an updated overview of auxetic metamaterials for biomedical devices. It stands out for providing a comprehensive view of medical applications for auxetics, including a focus on prosthetics, orthotics, ergonomic appliances, performance enhancement devices, in vitro medical devices for interacting with cells, and advanced medicinal clinical products, especially tissue engineering scaffolds with living cells. Innovative design and simulation approaches for the engineering of auxetic-based products are covered, and the relevant manufacturing technologies for prototyping and producing auxetics are analysed, taking into consideration those capable of processing biomaterials and enabling multi-scale and multi-material auxetics. An engineering design rational for auxetics-based medical devices is presented with integrative purposes. Finally, key research, development and expected technological breakthroughs are discussed.

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