Kim Hyo Jin, Lee Sung-Min, Oh Yoon-Suk, Yang Young-Hwan, Lim Young Soo, Yoon Dae Ho, Lee Changgu, Kim Jong-Young, Ruoff Rodney S
1] Icheon Branch, Korea Institute of Ceramic Engineering and Technology, Icheon, Republic of Korea [2] School of Advanced Materials Science and Engineering, Sungkyunkwan University, Suwon, Republic of Korea.
Icheon Branch, Korea Institute of Ceramic Engineering and Technology, Icheon, Republic of Korea.
Sci Rep. 2014 Jun 5;4:5176. doi: 10.1038/srep05176.
It is of critical importance to improve toughness, strength, and wear-resistance together for the development of advanced structural materials. Herein, we report on the synthesis of unoxidized graphene/alumina composite materials having enhanced toughness, strength, and wear-resistance by a low-cost and environmentally benign pressure-less-sintering process. The wear resistance of the composites was increased by one order of magnitude even under high normal load condition (25 N) as a result of a tribological effect of graphene along with enhanced fracture toughness (KIC) and flexural strength (σf) of the composites by ~75% (5.60 MPa·m(1/2)) and ~25% (430 MPa), respectively, compared with those of pure Al2O3. Furthermore, we found that only a small fraction of ultra-thin graphene (0.25-0.5 vol%, platelet thickness of 2-5 nm) was enough to reinforce the composite. In contrast to unoxidized graphene, graphene oxide (G-O) and reduced graphene oxide (rG-O) showed little or less enhancement of fracture toughness due to the degraded mechanical strength of rG-O and the structural defects of the G-O composites.
对于先进结构材料的发展而言,同时提高韧性、强度和耐磨性至关重要。在此,我们报道了通过一种低成本且环境友好的无压烧结工艺合成具有增强韧性、强度和耐磨性的未氧化石墨烯/氧化铝复合材料。由于石墨烯的摩擦学效应,以及复合材料的断裂韧性(KIC)和弯曲强度(σf)分别比纯Al2O3提高了约75%(5.60 MPa·m(1/2))和约25%(430 MPa),即使在高法向载荷条件(25 N)下,复合材料的耐磨性也提高了一个数量级。此外,我们发现仅一小部分超薄石墨烯(0.25 - 0.5 体积%,片状厚度为2 - 5 nm)就足以增强复合材料。与未氧化石墨烯相比,由于还原氧化石墨烯(rG - O)的机械强度降低以及氧化石墨烯(G - O)复合材料的结构缺陷,氧化石墨烯(G - O)和还原氧化石墨烯(rG - O)对断裂韧性的增强作用很小或几乎没有。