Davidraj Jefrin M, Sathish Clastinrusselraj Indirathankam, Benzigar Mercy Rose, Li Zhixuan, Zhang Xiangwei, Bahadur Rohan, Ramadass Kavitha, Singh Gurwinder, Yi Jiabao, Kumar Prashant, Vinu Ajayan
Global Innovative Centre for Advanced Nanomaterials (GICAN), School of Engineering, College of Engineering, Science, and Environment, The University of Newcastle, Callaghan, Australia.
Sci Technol Adv Mater. 2024 May 20;25(1):2357062. doi: 10.1080/14686996.2024.2357062. eCollection 2024.
Affordable and environmentally friendly electrochemically active raw energy storage materials are in high demand to switch to mass-scale renewable energy. One particularly promising avenue is the feasibility of utilizing food waste-derived nanoporous carbon. This material holds significance due to its widespread availability, affordability, ease of processing, and, notably, its cost-free nature. Over the years, various strategies have been developed to convert different food wastes into nanoporous carbon materials with enhanced electrochemical properties. The electrochemical performance of these materials is influenced by both intrinsic factors, such as the composition of elements derived from the original food sources and recipes, and extrinsic factors, including the conditions during pyrolysis and activation. While current efforts are dedicated to optimizing process parameters to achieve superior performance in electrochemical energy storage devices, it is timely to take stock of the current state of research in this emerging field. This review provides a comprehensive overview of recent developments in the fabrication and surface characterisation of porous carbons from different food wastes. A special focus is given on the applications of these food waste derived porous carbons for energy storage applications including batteries and supercapacitors.
为了转向大规模可再生能源,人们对价格合理且环保的电化学活性原生储能材料有很高的需求。一个特别有前景的途径是利用食物垃圾衍生的纳米多孔碳的可行性。这种材料具有重要意义,因为它来源广泛、价格低廉、易于加工,而且特别之处在于其无需成本。多年来,已经开发出各种策略来将不同的食物垃圾转化为具有增强电化学性能的纳米多孔碳材料。这些材料的电化学性能受到内在因素(如源自原始食物来源和配方的元素组成)和外在因素(包括热解和活化过程中的条件)的影响。虽然目前的努力致力于优化工艺参数以在电化学储能装置中实现卓越性能,但现在是时候对这个新兴领域的研究现状进行评估了。本综述全面概述了从不同食物垃圾制备多孔碳及其表面表征的最新进展。特别关注这些源自食物垃圾的多孔碳在包括电池和超级电容器在内的储能应用中的应用。