Balqis Nuralmeera, Mohamed Jan Badrul, Simon Cornelis Metselaar Hendrik, Sidek Akhmal, Kenanakis George, Ikram Rabia
Department of Chemical Engineering, Faculty of Engineering, Universiti Malaya, Kuala Lumpur 50603, Malaysia.
Centre of Advanced Materials, Department of Mechanical Engineering, Universiti Malaya, Kuala Lumpur 50603, Malaysia.
Materials (Basel). 2023 May 14;16(10):3726. doi: 10.3390/ma16103726.
It is no secret that graphene, a two-dimensional single-layered carbon atom crystal lattice, has drawn tremendous attention due to its distinct electronic, surface, mechanical, and optoelectronic properties. Graphene also has opened up new possibilities for future systems and devices due to its distinct structure and characteristics which has increased its demand in a variety of applications. However, scaling up graphene production is still a difficult, daunting, and challenging task. Although there is a vast body of literature reported on the synthesis of graphene through conventional and eco-friendly methods, viable processes for mass graphene production are still lacking. This review focuses on the variety of unwanted waste materials, such as biowastes, coal, and industrial wastes, for producing graphene and its potential derivatives. Among the synthetic routes, the main emphasis relies on microwave-assisted production of graphene derivatives. In addition, a detailed analysis of the characterization of graphene-based materials is presented. This paper also highlights the current advances and applications through the recycling of waste-derived graphene materials using microwave-assisted technology. In the end, it would alleviate the current challenges and forecast the specific direction of waste-derived graphene future prospects and developments.
二维单层碳原子晶格的石墨烯因其独特的电子、表面、机械和光电特性而备受关注,这已不是什么秘密。由于其独特的结构和特性,石墨烯也为未来的系统和设备开辟了新的可能性,这增加了其在各种应用中的需求。然而,扩大石墨烯的生产规模仍然是一项艰巨、令人生畏且具有挑战性的任务。尽管有大量文献报道了通过传统和环保方法合成石墨烯,但仍缺乏可行的大规模生产石墨烯的工艺。本综述重点关注用于生产石墨烯及其潜在衍生物的各种废弃材料,如生物废料、煤炭和工业废料。在合成路线中,主要重点是微波辅助生产石墨烯衍生物。此外,还对基于石墨烯的材料的表征进行了详细分析。本文还强调了利用微波辅助技术回收废弃衍生石墨烯材料的当前进展和应用。最后,它将缓解当前的挑战,并预测废弃衍生石墨烯未来前景和发展的具体方向。