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使用放电等离子烧结制备的超高剪切力混合还原氧化石墨烯/羟基磷灰石纳米复合材料的力学性能改善

Improved Mechanical Properties of Ultra-High Shear Force Mixed Reduced Graphene Oxide/Hydroxyapatite Nanocomposite Produced Using Spark Plasma Sintering.

作者信息

Wang Bing-Yen, Hsu Steven, Chou Chia-Man, Wu Tair-I, Hsiao Vincent K S

机构信息

Division of Thoracic Surgery, Department of Surgery, Changhua Christian Hospital, Changhua 500, Taiwan.

Center for General Education, Ming Dao University, Changhua 523, Taiwan.

出版信息

Nanomaterials (Basel). 2021 Apr 12;11(4):986. doi: 10.3390/nano11040986.

Abstract

The addition of nanomaterials, such as graphene and graphene oxide, can improve the mechanical properties of hydroxyapatite (HA) nanocomposites (NCPs). However, both the dispersive state of the starting materials and the sintering process play central roles in improving the mechanical properties of the final HA NCPs. Herein, we studied the mechanical properties of a reduced graphene oxide (r-GO)/HA NCP, for which an ultra-high shear force was used to achieve a nano-sized mixture through the dispersion of r-GO. A low-temperature, short-duration spark plasma sintering (SPS) process was used to realize high-density, non-decomposing r-GO/HA NCPs with an improved fracture toughness of 97.8% via the addition of 0.5 wt.% r-GO. Greater quantities of r-GO improve the hardness and the fracture strength. The improved mechanical properties of r-GO/HA NCPs suggest their future applicability in biomedical engineering, including use as sintered bodies in dentistry, plasma spray-coatings for metal surfaces, and materials for 3D printing in orthopedics.

摘要

添加纳米材料,如石墨烯和氧化石墨烯,可以改善羟基磷灰石(HA)纳米复合材料(NCPs)的机械性能。然而,起始材料的分散状态和烧结过程在提高最终HA NCPs的机械性能方面都起着核心作用。在此,我们研究了还原氧化石墨烯(r-GO)/HA NCP的机械性能,为此使用了超高剪切力通过r-GO的分散来实现纳米级混合物。采用低温、短时间的放电等离子烧结(SPS)工艺,通过添加0.5 wt.%的r-GO,实现了高密度、不分解的r-GO/HA NCPs,其断裂韧性提高了97.8%。更多数量的r-GO可提高硬度和断裂强度。r-GO/HA NCPs改善的机械性能表明其在生物医学工程中的未来适用性,包括用作牙科烧结体、金属表面的等离子喷涂涂层以及骨科3D打印材料。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7467/8069644/a3a066980217/nanomaterials-11-00986-g001.jpg

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