Bio-Inspired Materials: Exhibited Characteristics and Integration Degree in Bio-Printing Operations

Antreas Kantaros
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引用次数: 19

Abstract

: In the last decade, additive manufacturing techniques, commonly known under the term "3d printing" have seen constantly increasing use in various scientific fields. The nature of these fabrication techniques that operate under a layer-by-layer material deposition principle features several de facto advantages, compared to traditional manufacturing techniques. These advantages range from the precise attribution of pre-designed complex shapes to the use of a variety of materials as raw materials in the process. However, its major strong point is the ability to fabricate custom shapes with interconnected lattices, and porous interiors that traditional manufacturing techniques cannot properly attribute. This potential is being largely exploited in the biomedical field in sectors like bio-printing, where such structures are being used for direct implantation into the human body. To meet the strict requirements that such procedures dictate, the fabricated items need to be made out of biomaterials exhibiting properties like biocompatibility, bioresorbability, biodegradability, and appropriate mechanical properties. This review aims not only to list the most important biomaterials used in these techniques but also to bring up their pros and cons in meeting the aforementioned characteristics that are vital in their use.
仿生材料:在生物打印操作中表现出的特性和集成程度
在过去的十年中,通常被称为“3d打印”的增材制造技术在各个科学领域的应用不断增加。与传统制造技术相比,这些在逐层材料沉积原理下运作的制造技术具有几个事实上的优势。这些优势包括从预先设计的复杂形状的精确属性到在过程中使用各种材料作为原材料。然而,它的主要优点是能够制造具有相互连接的晶格的定制形状,以及传统制造技术无法适当归因于的多孔内部。这种潜力在生物医学领域得到了很大的开发,比如生物打印,这种结构被用于直接植入人体。为了满足这些程序规定的严格要求,制造项目需要由具有生物相容性,生物可吸收性,生物可降解性和适当机械性能等特性的生物材料制成。这篇综述的目的不仅是列出在这些技术中使用的最重要的生物材料,而且还提出了它们在满足上述特性方面的优缺点,这些特性对它们的使用至关重要。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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