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利用 X 射线超微断层扫描技术揭示天然聚合物微复合材料的 3D 内部结构。

Revealing the 3D internal structure of natural polymer microcomposites using X-ray ultra microtomography.

机构信息

Mechanical Engineering-Engineering Mechanics, Michigan Technological University, Michigan, U.S.A.

出版信息

J Microsc. 2011 Jul;243(1):77-85. doi: 10.1111/j.1365-2818.2010.03483.x. Epub 2011 Feb 2.

Abstract

Properties of composite materials are directly affected by the spatial arrangement of reinforcement and matrix. In this research, partially hydrolysed cellulose microcrystals were used to fabricate polycaprolactone microcomposites. The spatial distribution of cellulose microcrystals was characterized by a newly developed technique of X-ray ultra microscopy and microtomography. The phase and absorption contrast imaging of X-ray ultra microscopy revealed two-dimensional and three-dimensional information on CMC distribution in polymer matrices. The highest contrast and flux (signal-to-noise ratio) were obtained using vanadium foil targets with the accelerating voltage of 30 keV and beam current of >200 nA. The spatial distribution of cellulose microcrystals was correlated to the mechanical properties of the microcomposites. It was observed that heterogeneous distribution and clustering of cellulose microcrystals resulted in degradation of tensile strength and elastic modulus of composites. The utilization of X-ray ultra microscopy can open up new opportunities for composite researchers to explore the internal structure of microcomposites. X-ray ultra microscopy sample preparation is relatively simple in comparison to transmission electron microscopy and the spatial information is gathered at much larger scale.

摘要

复合材料的性能直接受到增强体和基体的空间排列的影响。在这项研究中,部分水解的纤维素微晶被用于制备聚己内酯微复合材料。纤维素微晶的空间分布通过一种新开发的 X 射线超显微镜和微断层扫描技术进行了表征。X 射线超显微镜的相衬和吸收衬度成像揭示了聚合物基体中 CMC 分布的二维和三维信息。使用 30keV 的加速电压和 >200nA 的束流的钒箔靶获得了最高的对比度和通量(信噪比)。纤维素微晶的空间分布与微复合材料的力学性能相关。观察到纤维素微晶的不均匀分布和团聚导致复合材料的拉伸强度和弹性模量降低。X 射线超显微镜的使用为复合材料研究人员探索微复合材料的内部结构开辟了新的机会。与透射电子显微镜相比,X 射线超显微镜的样品制备相对简单,并且可以在更大的尺度上收集空间信息。

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