Felix Isaac M, Tromer Raphael M, Machado Leonardo D, Galvão Douglas S, Ribeiro Luiz A, Pereira Marcelo L
Department of Physics, Federal University of Pernambuco, Recife, Pernambuco, Brazil.
School of Engineering, MackGraphe, Mackenzie Presbyterian University, São Paulo, São Paulo, Brazil.
Nanoscale. 2024 Sep 12;16(35):16430-16438. doi: 10.1039/d4nr02669a.
Recently, a new 2D carbon allotrope called Irida-Graphene (Irida-G) was proposed, and its reliable stability has been previously predicted. Irida-G is a flat sheet topologically arranged into 3-6-8 carbon rings exhibiting metallic and non-magnetic properties. In this study, we investigated the thermal transport properties of Irida-G using classical reactive molecular dynamics simulations. The findings indicate that Irida-G has an intrinsic thermal conductivity of approximately 215 W mK at room temperature, significantly lower than that of pristine graphene. This decrease is due to characteristic phonon scattering within Irida-G's porous structure. Additionally, the phonon group velocities and vibrational density of states for Irida-G were analyzed, revealing reduced average phonon group velocities compared to graphene. The thermal conductivity of Irida-G is isotropic and shows significant size effects, transitioning from ballistic to diffusive heat transport regimes as the system length increases. These results suggest that while Irida-G has lower thermal conductivity than graphene, it still holds potential for specific thermal management applications, sharing characteristics with other two-dimensional materials.
最近,一种名为铱石墨烯(Irida-G)的新型二维碳同素异形体被提出,其可靠的稳定性此前已被预测。Irida-G是一种拓扑排列成3-6-8碳环的扁平薄片,具有金属和非磁性特性。在本研究中,我们使用经典反应分子动力学模拟研究了Irida-G的热输运性质。研究结果表明,Irida-G在室温下的本征热导率约为215 W mK,显著低于原始石墨烯。这种降低是由于Irida-G多孔结构内的特征声子散射。此外,还分析了Irida-G的声子群速度和振动态密度,结果显示与石墨烯相比,其平均声子群速度降低。Irida-G的热导率是各向同性的,并且表现出显著的尺寸效应,随着系统长度的增加,热输运模式从弹道式转变为扩散式。这些结果表明,虽然Irida-G的热导率低于石墨烯,但它在特定的热管理应用中仍具有潜力,与其他二维材料具有共同特征。