Jafari Aliakbar, Majdoub Mohammed, Sengottuvelu Dineshkumar, Ucak-Astarlioglu Mine G, Al-Ostaz Ahmed, Nouranian Sasan
Department of Chemical Engineering, University of Mississippi, University, Mississippi 38677, United States.
Center for Graphene Research and Innovation, University of Mississippi, University, Mississippi 38677, United States.
ACS Omega. 2024 Dec 16;9(52):50868-50893. doi: 10.1021/acsomega.4c06845. eCollection 2024 Dec 31.
This review explores the tribological properties of biosourced lubricants (biolubricants) enhanced by graphene (Gr) and its derivatives and hybrids. Friction and wear at mechanical interfaces are the primary causes of energy loss and machinery degradation, necessitating effective lubrication strategies. Traditional lubricants derived from mineral oils present environmental challenges, leading to an increased interest in biolubricants derived from plant oils and animal fats. Biolubricants offer high biodegradability, renewability, and low toxicity, positioning them as ecofriendly alternatives. This work extensively reviews the role of Gr-based nanoadditives in enhancing the lubrication properties of biolubricants. Gr with its exceptional physicomechanical properties has shown promise in reducing friction and wear. The review covers various Gr derivatives, including Gr oxide (GO) and reduced Gr oxide (r-GO), and their performance as lubrication additives. The discussion extends to Gr hybrids with metals, polymers, and other 2D materials, highlighting their synergistic effects on the tribological performance. The mechanisms through which these additives enhance lubrication, such as the formation of protective films and improved interactions between lubricants and tribopairs, are examined. Emphasis is placed on the environmental benefits and potential performance improvements of Gr-based biolubricants. Finally, by analyzing current research and technological trends, the paper outlines future prospects for optimizing lubricant formulations with Gr-based nanoadditives, aiming for more sustainable and efficient tribological applications.
本综述探讨了由石墨烯(Gr)及其衍生物和杂化物增强的生物源润滑剂(生物润滑剂)的摩擦学特性。机械界面处的摩擦和磨损是能量损失和机械退化的主要原因,因此需要有效的润滑策略。源自矿物油的传统润滑剂带来了环境挑战,这使得人们对源自植物油和动物脂肪的生物润滑剂的兴趣日益增加。生物润滑剂具有高生物降解性、可再生性和低毒性,使其成为环保替代品。这项工作广泛综述了基于Gr的纳米添加剂在增强生物润滑剂润滑性能方面的作用。具有卓越物理机械性能的Gr在降低摩擦和磨损方面已显示出前景。该综述涵盖了各种Gr衍生物,包括氧化石墨烯(GO)和还原氧化石墨烯(r-GO),以及它们作为润滑添加剂的性能。讨论还扩展到Gr与金属、聚合物和其他二维材料的杂化物,突出了它们对摩擦学性能的协同效应。研究了这些添加剂增强润滑的机制,例如形成保护膜以及改善润滑剂与摩擦副之间的相互作用。重点在于基于Gr的生物润滑剂的环境效益和潜在的性能提升。最后,通过分析当前的研究和技术趋势,本文概述了用基于Gr的纳米添加剂优化润滑剂配方的未来前景,旨在实现更可持续和高效的摩擦学应用。