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从囊泡到材料:用于构建分级结构软物质的仿生策略。

From vesicles to materials: bioinspired strategies for fabricating hierarchically structured soft matter.

机构信息

Soft Materials Laboratory, Institute of Materials, École Polytechnique Fédérale de Lausanne, 1015 Lausanne, Switzerland.

Dept. of Chemistry, McGill University, 801 Sherbrooke Street West, Montreal, Quebec, Canada H3A 0B8.

出版信息

Philos Trans A Math Phys Eng Sci. 2021 Sep 20;379(2206):20200338. doi: 10.1098/rsta.2020.0338. Epub 2021 Aug 2.

Abstract

Certain organisms including species of mollusks, polychaetes, onychophorans and arthropods produce exceptional polymeric materials outside their bodies under ambient conditions using concentrated fluid protein precursors. While much is understood about the structure-function relationships that define the properties of such materials, comparatively less is understood about how such materials are fabricated and specifically, how their defining hierarchical structures are achieved via bottom-up assembly. Yet this information holds great potential for inspiring sustainable manufacture of advanced polymeric materials with controlled multi-scale structure. In the present perspective, we first examine recent work elucidating the formation of the tough adhesive fibres of the mussel byssus via secretion of vesicles filled with condensed liquid protein phases (coacervates and liquid crystals)-highlighting which design principles are relevant for bio-inspiration. In the second part of the perspective, we examine the potential of recent advances in drops and additive manufacturing as a bioinspired platform for mimicking such processes to produce hierarchically structured materials. This article is part of the theme issue 'Bio-derived and bioinspired sustainable advanced materials for emerging technologies (part 1)'.

摘要

某些生物体,包括软体动物、多毛类、有爪动物和节肢动物等物种,在环境条件下,利用浓缩的流体蛋白前体,在体外生成特殊的聚合材料。尽管人们已经了解了很多关于这些材料的结构-功能关系,这些关系定义了材料的特性,但对于这些材料是如何制造的,以及它们的定义层次结构是如何通过自下而上的组装来实现的,人们的了解相对较少。然而,这些信息对于激发具有受控多尺度结构的先进聚合材料的可持续制造具有巨大的潜力。在本观点中,我们首先研究了最近的工作,这些工作阐明了贻贝足丝坚韧的粘合纤维是如何通过充满浓缩液体蛋白相(凝聚物和液晶)的囊泡分泌形成的-强调了哪些设计原则与生物启发相关。在观点的第二部分,我们研究了最近在液滴和添加剂制造方面的进展,作为一个生物启发的平台,用于模拟这些过程,以生产具有层次结构的材料。本文是“新兴技术的生物衍生和生物启发可持续先进材料(第 1 部分)”主题专刊的一部分。

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