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Morphological and mechanical characterization of composite calcite/SWCNT-COOH single crystals

机译:形态和力学特性复合方解石/ SWCNT-COOH单一晶体

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A growing number of classes of organic (macro)molecular materials have been trapped into inorganic crystalline hosts, such as calcite single crystals, without significantly disrupting their crystalline lattices. Inclusion of an organic phase plays a key role in enhancing the mechanical properties of the crystals, which are believed to share structural features with biogenic minerals. Here we report the synthesis and mechanical characterization of composite calcite/SWCNT-COOH single crystals. Once entrapped into the crystals SWCNT-COOH appeared both as aggregates of entangled bundles and nanoropes. Their observation was possible only after crystal etching, fracture or FIB (focused ion beam) cross-sectioning. SWCNT-COOHs occupied a small volume fraction and were randomly distributed into the host crystal. They did not strongly affect the crystal morphology. However, although the Young's modulus of composite calcite/SWCNT-COOH single crystals was similar to that of pure calcite their hardness increased by about 20%. Thus, SWCNT-COOHs provide an obstacle against the dislocation-mediated propagation of plastic deformation in the crystalline slip systems, in analogy with the well-known hardness increase in fiber-reinforced composites.
机译:越来越多的有机类(宏观)分子材料被困无机晶体,如方解石单晶,没有明显干扰他们的晶型。在提高有机相起着关键的作用晶体的力学性能认为分享结构特点生物矿物质。和机械特性的复合材料方解石/ SWCNT-COOH单一晶体。压铸晶体SWCNT-COOH出现了纠缠的聚合体包和nanoropes。晶体腐蚀后,骨折或心房纤颤(专注离子束浆纱切片)。一个小体积分数和随机分成主机晶体。强烈影响晶体结构。虽然复合材料的杨氏模量方解石/ SWCNT-COOH单一晶体相似纯方解石的硬度增加约20%。dislocation-mediated传播的在晶体滑移塑性变形系统,与著名的类比硬度提高纤维增强复合材料。

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