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层次超晶陶瓷-有机纳米复合材料力学性能的映射。

Mapping the Mechanical Properties of Hierarchical Supercrystalline Ceramic-Organic Nanocomposites.

机构信息

Institute of Advanced Ceramics, Hamburg University of Technology, Denickestr. 15, 21073 Hamburg, Germany.

Institute of Physical Chemistry, University of Hamburg, Grindelallee 117, 20146 Hamburg, Germany.

出版信息

Molecules. 2020 Oct 19;25(20):4790. doi: 10.3390/molecules25204790.

Abstract

Multiscale ceramic-organic supercrystalline nanocomposites with two levels of hierarchy have been developed via self-assembly with tailored content of the organic phase. These nanocomposites consist of organically functionalized ceramic nanoparticles forming supercrystalline micron-sized grains, which are in turn embedded in an organic-rich matrix. By applying an additional heat treatment step at mild temperatures (250-350 °C), the mechanical properties of the hierarchical nanocomposites are here enhanced. The heat treatment leads to partial removal and crosslinking of the organic phase, minimizing the volume occupied by the nanocomposites' soft phase and triggering the formation of covalent bonds through the organic ligands interfacing the ceramic nanoparticles. Elastic modulus and hardness up to 45 and 2.5 GPa are attained, while the hierarchical microstructure is preserved. The presence of an organic phase between the supercrystalline grains provides a toughening effect, by curbing indentation-induced cracks. A mapping of the nanocomposites' mechanical properties reveals the presence of multiple microstructural features and how they evolve with heat treatment temperature. A comparison with non-hierarchical, homogeneous supercrystalline nanocomposites with lower organic content confirms how the hierarchy-inducing organic excess results in toughening, while maintaining the beneficial effects of crosslinking on the materials' stiffness and hardness.

摘要

通过具有定制有机相含量的自组装,开发了具有两个层次结构的多尺度陶瓷-有机超晶纳米复合材料。这些纳米复合材料由有机功能化陶瓷纳米颗粒组成,形成超晶微米级晶粒,这些晶粒又嵌入在富含有机相的基体中。通过在温和温度(250-350°C)下施加额外的热处理步骤,分层纳米复合材料的力学性能得到了增强。热处理导致有机相的部分去除和交联,使纳米复合材料的软相占据的体积最小化,并通过界面连接陶瓷纳米颗粒的有机配体触发共价键的形成。达到了高达 45 GPa 和 2.5 GPa 的弹性模量和硬度,同时保留了分层微观结构。在超晶颗粒之间存在有机相提供了增韧效果,通过抑制压痕诱导的裂纹。纳米复合材料力学性能的映射揭示了存在多种微观结构特征以及它们如何随热处理温度演变。与具有较低有机含量的非分层、均匀超晶纳米复合材料的比较证实了分层诱导的有机过剩如何在保持交联对材料刚度和硬度的有益影响的同时导致增韧。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/639b/7587535/ade7bf1fc075/molecules-25-04790-g001.jpg

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