Zhao Ming, Liu Lizhu, Zhang Bin, Sun Mingming, Zhang Xugang, Zhang Xue, Li Jianhui, Wang Lei
School of Materials Science and Engineering, Harbin University of Science and Technology 4 Linyuan Road Harbin Heilongjiang 150040 P. R. China
Institute of Petrochemistry Heilongjiang Academy of Sciences 164 Zhongshan Road Harbin Heilongjiang 150040 P. R. China
RSC Adv. 2018 Oct 15;8(61):35170-35178. doi: 10.1039/c8ra07448h. eCollection 2018 Oct 10.
As a typical layered inorganic analogue of graphene, molybdenum disulfide (MoS) has gained intensive attention and become a research hotspot due to its unique two dimensional nanostructure and excellent properties. The enhancement in the thermal and mechanical properties of polymer/inorganic nanosheet composites depends strongly on their interfacial interaction. In this study, we exfoliated bulk MoS into nanosheets which were subsequently functionalized using 3-mercaptopropyltriethoxysilane. The functionalized MoS (f-MoS) were dispersed in epoxy polymers at loading fractions of up to 1% by weight ultrasonication and three roll mills. We characterized the tensile, fracture and adhesive properties of the composite and show that f-MoS nanoplatelets are highly effective at enhancing the mechanical properties of the epoxy at very low nanofiller loading fractions (0.1-0.7% by weight). Our results show the potential of functionalized 2D sheets of transition metal dichalcogenides as reinforcing additives in polymeric composites. The results indicate that the glass transition temperature increases significantly for the lower weight fraction composites, from 135 °C for the baseline (unfilled) epoxy to 146 °C at 0.7% f-MoS loading. The apparent shear strength at 120 °C increases significantly for the lower weight fraction composites, from 13.8 MPa for the baseline (unfilled) epoxy to 24.9 MPa at 0.7% f-MoS loading.
作为石墨烯典型的层状无机类似物,二硫化钼(MoS)因其独特的二维纳米结构和优异性能而受到广泛关注并成为研究热点。聚合物/无机纳米片复合材料的热性能和机械性能的增强很大程度上取决于它们的界面相互作用。在本研究中,我们将块状MoS剥离成纳米片,随后用3-巯基丙基三乙氧基硅烷对其进行功能化处理。通过超声处理和三辊研磨机,将功能化的MoS(f-MoS)以高达1%的重量分数分散在环氧聚合物中。我们对复合材料的拉伸、断裂和粘合性能进行了表征,结果表明,在非常低的纳米填料负载分数(0.1 - 0.7%重量)下,f-MoS纳米片在增强环氧树脂的机械性能方面非常有效。我们的结果显示了功能化的二维过渡金属二硫属化物片材作为聚合物复合材料增强添加剂的潜力。结果表明,较低重量分数复合材料的玻璃化转变温度显著升高,从基线(未填充)环氧树脂的135°C升至0.7% f-MoS负载量时的146°C。较低重量分数复合材料在120°C时的表观剪切强度显著增加,从基线(未填充)环氧树脂的13.8 MPa升至0.7% f-MoS负载量时的24.9 MPa。