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大壶状腺和小壶状腺拖网蜘蛛丝中纳米晶体和非晶结构的X射线衍射研究

X-ray diffraction study of nanocrystalline and amorphous structure within major and minor ampullate dragline spider silks.

作者信息

Sampath Sujatha, Isdebski Thomas, Jenkins Janelle E, Ayon Joel V, Henning Robert W, Orgel Joseph P R O, Antipoa Olga, Yarger Jeffery L

机构信息

Department of Chemistry and Biochemistry, Magnetic Resonance Research Center, Arizona State University, Tempe, AZ, 85287-1604, USA.

出版信息

Soft Matter. 2012 Jul 7;8(25):6713-6722. doi: 10.1039/C2SM25373A.

Abstract

Synchrotron X-ray micro-diffraction experiments were carried out on (NC) and (AA) major (MA) and minor ampullate (MiA) fibers that make up dragline spider silk. The diffraction patterns show a semi-crystalline structure with β-poly(l-alanine) nanocrystallites embedded in a partially oriented amorphous matrix. A superlattice reflection 'S' diffraction ring is observed, which corresponds to a crystalline component larger in size and is poorly oriented, when compared to the β-poly(l-alanine) nanocrystallites that are commonly observed in dragline spider silks. Crystallite size, crystallinity and orientation about the fiber axis have been determined from the wide-angle X-ray diffraction (WAXD) patterns. In both NC and AA, the MiA silks are found to be more highly crystalline, when compared with the corresponding MA silks. Detailed analysis on the amorphous matrix shows considerable differences in the degree of order of the oriented amorphous component between the different silks studied and may play a crucial role in determining the mechanical properties of the silks.

摘要

利用同步加速器X射线微衍射实验对构成蜘蛛拖丝的(NC)和(AA)主壶腹(MA)丝和次壶腹(MiA)丝进行了研究。衍射图谱显示出一种半结晶结构,其中β-聚(L-丙氨酸)纳米微晶嵌入部分取向的非晶基质中。观察到一个超晶格反射“S”衍射环,它对应于一个尺寸更大且取向较差的结晶组分,与在蜘蛛拖丝中常见的β-聚(L-丙氨酸)纳米微晶相比。通过广角X射线衍射(WAXD)图谱确定了微晶尺寸、结晶度和纤维轴方向上的取向。在NC和AA中,与相应的MA丝相比,发现MiA丝具有更高的结晶度。对非晶基质的详细分析表明,在所研究的不同丝之间,取向非晶组分的有序程度存在显著差异,这可能在决定丝的力学性能方面起关键作用。

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