Huang Danlian, Chen Yashi, Cheng Min, Lei Lei, Chen Sha, Wang Wenjun, Liu Xigui
College of Environmental Science and Engineering, Hunan University, Changsha, Hunan, 410082, China.
Key Laboratory of Environmental Biology and Pollution Control (Hunan University), Ministry of Education, Changsha, Hunan, 410082, China.
Small. 2021 Jan;17(4):e2002998. doi: 10.1002/smll.202002998. Epub 2020 Dec 23.
In the past ten years, carbon dots-decorated, carbon-based, metal-free catalysts (CDs-C-MFCs) have become the fastest-growing branch in the metal-free materials for energy storage field. However, the further development of CDs-C-MFCs needs to clear up the electronic transmission mechanism rather than primarily relying on trial-and-error approaches. This review presents systematically and comprehensively for the first time the latest advances of CDs-C-MFCs in supercapacitors and metal-air batteries. The structure-performance relationship of these materials is carefully discussed. It is indicated that carbon dots (CDs) can act as the electron-rich regions in CDs-C-MFCs owing to their unique properties, such as quantum confinement effects, abundant defects, countless functional groups, etc. More importantly, specific doping can effectively modify the charge/spin distribution and then facilitate electron transfer. In addition, present challenges and future prospects of the CDs-C-MFCs are also given.
在过去十年中,碳点修饰的碳基无金属催化剂(CDs-C-MFCs)已成为储能领域无金属材料中发展最快的分支。然而,CDs-C-MFCs的进一步发展需要厘清电子传输机制,而不是主要依赖反复试验的方法。本综述首次系统全面地介绍了CDs-C-MFCs在超级电容器和金属空气电池方面的最新进展。仔细讨论了这些材料的结构-性能关系。结果表明,由于碳点(CDs)具有独特的性质,如量子限域效应、大量缺陷、无数官能团等,它们可以在CDs-C-MFCs中充当富电子区域。更重要的是,特定的掺杂可以有效地改变电荷/自旋分布,进而促进电子转移。此外,还给出了CDs-C-MFCs目前面临的挑战和未来前景。