Idowu Adeyinka, Thomas Tony, Bustillos Jenniffer, Boesl Benjamin, Agarwal Arvind
Plasma Forming Laboratory, Department of Mechanical and Materials Engineering, Florida International University, Miami, FL 33174, USA.
Polymers (Basel). 2023 Jun 30;15(13):2903. doi: 10.3390/polym15132903.
Shape memory polymer (SMP) epoxy composites have attracted significant attention due to their easy processing, lightweight nature, and ability to recover strain. However, their limited recovery rate and inferior mechanical properties have hindered their functional applications. This research explores the potential of three-dimensional (3D) graphene foam (GrF) as a highly efficient reinforcement for SMP epoxy composites. We demonstrated that the incorporation of a mere 0.13 wt.% GrF into mold-cast SMP epoxy leads to a 19% increase in the glass transition temperature (T). To elucidate the reinforcing mechanism, we fabricated and extensively analyzed composites with varying weight percentages of GrF. The GrF-based SMP epoxy composite exhibits a 57% increase in thermal conductivity, measuring 0.296 W mK at 70 °C, due to the interconnected 3D graphene network within the matrix. Notably, this composite also demonstrates remarkable electrical conductivity, making it suitable for dual-triggering applications. The GrF-SMP epoxy composite achieves a maximum shape recovery ratio and a significant 23% improvement in the recovery rate, effectively addressing the issue of slow recovery associated with SMPs. We investigated the effect of switching temperatures on the shape recovery rate. We identified the optimal triggering temperature to initiate shape recovery for epoxy SMP and GrF-epoxy SMP as thermal energy equivalent to T + 20 °C. Additionally, we fabricated a bird-shaped composite using GrF reinforcement, which showcases self-healing capabilities through the crack opening and closure and serves as a tangible demonstration of the transformative potential of the composite. These GrF-epoxy SMP composites, responsive to stimuli, hold immense promise for diverse applications, such as mechanical systems, wearable sensors, morphing wings, foldable robots, and antennas.
形状记忆聚合物(SMP)环氧复合材料因其易于加工、重量轻以及能够恢复应变而备受关注。然而,它们有限的恢复速率和较差的机械性能阻碍了其功能应用。本研究探索了三维(3D)石墨烯泡沫(GrF)作为SMP环氧复合材料高效增强材料的潜力。我们证明,在模铸SMP环氧中仅加入0.13 wt.%的GrF会使玻璃化转变温度(T)提高19%。为了阐明增强机制,我们制备并广泛分析了不同GrF重量百分比的复合材料。基于GrF的SMP环氧复合材料的热导率提高了57%,在70°C时测量为0.296 W mK,这归因于基质内相互连接的3D石墨烯网络。值得注意的是,这种复合材料还表现出显著的导电性,使其适用于双触发应用。GrF-SMP环氧复合材料实现了最大形状恢复率,并使恢复速率显著提高了23%,有效解决了与SMP相关的恢复缓慢问题。我们研究了转变温度对形状恢复率的影响。我们确定了环氧SMP和GrF-环氧SMP开始形状恢复的最佳触发温度为相当于T + 20°C的热能。此外,我们使用GrF增强材料制备了一种鸟形复合材料,它通过裂纹开合展示了自愈能力,并切实证明了该复合材料的变革潜力。这些对刺激有响应的GrF-环氧SMP复合材料在机械系统、可穿戴传感器、变形机翼、可折叠机器人和天线等各种应用中具有巨大潜力。