Suppr超能文献

多功能 3D 打印异质水凝胶结构。

Multifunctional 3D printing of heterogeneous hydrogel structures.

机构信息

Faculty of Engineering and Natural Sciences, Sabanci University, Orhanli-Tuzla, Istanbul, 34956, Turkey.

3D Bioprinting Laboratory, Sabanci University Nanotechnology Research and Application Center, Orhanli-Tuzla, Istanbul, 34956, Turkey.

出版信息

Sci Rep. 2016 Sep 15;6:33178. doi: 10.1038/srep33178.

Abstract

Multimaterial additive manufacturing or three-dimensional (3D) printing of hydrogel structures provides the opportunity to engineer geometrically dependent functionalities. However, current fabrication methods are mostly limited to one type of material or only provide one type of functionality. In this paper, we report a novel method of multimaterial deposition of hydrogel structures based on an aspiration-on-demand protocol, in which the constitutive multimaterial segments of extruded filaments were first assembled in liquid state by sequential aspiration of inks into a glass capillary, followed by in situ gel formation. We printed different patterned objects with varying chemical, electrical, mechanical, and biological properties by tuning process and material related parameters, to demonstrate the abilities of this method in producing heterogeneous and multi-functional hydrogel structures. Our results show the potential of proposed method in producing heterogeneous objects with spatially controlled functionalities while preserving structural integrity at the switching interface between different segments. We anticipate that this method would introduce new opportunities in multimaterial additive manufacturing of hydrogels for diverse applications such as biosensors, flexible electronics, tissue engineering and organ printing.

摘要

多材料增材制造或水凝胶结构的三维(3D)打印为工程学提供了制造几何依赖性功能的机会。然而,目前的制造方法大多仅限于一种材料,或者只提供一种功能。在本文中,我们报告了一种基于按需抽吸协议的水凝胶结构多材料沉积的新方法,其中挤出长丝的组成多材料段首先通过顺序抽吸墨水进入玻璃毛细管在液体状态下组装,然后进行原位凝胶形成。我们通过调整工艺和材料相关参数,打印出具有不同化学、电气、机械和生物学特性的不同图案物体,以展示该方法在制造异质和多功能水凝胶结构方面的能力。我们的结果表明,该方法在产生具有空间控制功能的异质物体方面具有潜力,同时在不同段之间的切换界面保持结构完整性。我们预计,该方法将为生物传感器、柔性电子、组织工程和器官打印等各种应用的水凝胶多材料增材制造带来新的机遇。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6f28/5024089/878d17641b46/srep33178-f1.jpg

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验