Alsaadi Mohamad, Hinchy Eoin P, McCarthy Conor T, Moritz Vicente F, Portela Alexandre, Devine Declan M
CONFIRM Centre for Smart Manufacturing, University of Limerick, V94 T9PX Limerick, Ireland.
PRISM Research Institute, Technological University of the Shannon, Dublin Rd, N37 HD68 Athlone, Ireland.
Nanomaterials (Basel). 2023 Sep 28;13(19):2658. doi: 10.3390/nano13192658.
In this study, a 3D-printed photocurable resin was developed by incorporating graphene nanoplatelets functionalised with melamine to investigate the thermal, mechanical, fracture and shape memory behaviours. The objective of this work was to produce a printed functionally graded nanocomposite material that has a smart temperature-responsive structure; presents good thermal stability, strength and fracture toughness; and can demonstrate shape-changing motions, such as sequential transformations, over time. The functionalised graphene nanoplatelets were examined via thermogravimetric analysis, Fourier transform infrared spectroscopy, Raman spectroscopy and ultraviolet-visible spectroscopy. Thermogravimetric analysis showed that the degradation temperature of the nanocomposite containing 0.1 wt% of functionalised graphene nanoplatelets at the weight loss of 5% was 304 °C, greater than that of the neat one by 29%. Dynamic mechanical analysis results showed property enhancements of the storage modulus and glass transition temperature. Fracture toughness, tensile strength and impact resistance were improved by 18%, 35% and 78%, respectively. The shape memory tests were performed to obtain the temperature-time recovery behaviour of the 3D-printed structures. The addition of functionalised graphene nanoplatelets demonstrated an enhancement in the shape recovery ratios. Generally, the five subsequent cycles were notably stable with a high recovery ratio of 97-100% for the flat shape and circular shape of the M-GNP specimens. On the other hand, these values were between 91% and 94% for the corresponding neat specimens.
在本研究中,通过加入用三聚氰胺功能化的石墨烯纳米片来开发一种3D打印的光固化树脂,以研究其热、机械、断裂和形状记忆行为。这项工作的目的是制造一种具有智能温度响应结构的打印功能梯度纳米复合材料;具有良好的热稳定性、强度和断裂韧性;并且能够随时间展示形状变化运动,如顺序转变。通过热重分析、傅里叶变换红外光谱、拉曼光谱和紫外可见光谱对功能化石墨烯纳米片进行了检测。热重分析表明,含0.1 wt%功能化石墨烯纳米片的纳米复合材料在失重5%时的降解温度为304℃,比纯树脂高29%。动态力学分析结果表明储能模量和玻璃化转变温度有所提高。断裂韧性、拉伸强度和抗冲击性分别提高了18%、35%和78%。进行形状记忆测试以获得3D打印结构的温度-时间恢复行为。功能化石墨烯纳米片的加入提高了形状恢复率。一般来说,M-GNP试样的平面形状和圆形形状在随后的五个循环中明显稳定,恢复率高达97-100%。另一方面,相应纯试样的这些值在91%至94%之间。