Department of Macromolecular Science and Engineering, Case Western Reserve University, 10900 Euclid Avenue, Cleveland, OH, 44106, USA.
National Institute of Aerospace, 100 Exploration Way, Hampton, VA, 23666, USA.
Adv Mater. 2019 Mar;31(13):e1806128. doi: 10.1002/adma.201806128. Epub 2019 Jan 28.
Owing to their high earth-abundance, eco-friendliness, high electrical conductivity, large surface area, structure tunability at the atomic/morphological levels, and excellent stability in harsh conditions, carbon-based metal-free materials have become promising advanced electrode materials for high-performance pseudocapacitors and metal-air batteries. Furthermore, carbon-based nanomaterials with well-defined structures can function as green catalysts because of their efficiency in advanced oxidation processes to remove organics in air or from water, which reduces the cost for air/water purification and avoids cross-contamination by eliminating the release of heavy metals/metal ions. Here, the research and development of carbon-based catalysts in supercapacitors and batteries for clean energy storage as well as in air/water treatments for environmental remediation are reviewed. The related mechanistic understanding and design principles of carbon-based metal-free catalysts are illustrated, along with the challenges and perspectives in this emerging field.
由于其地球丰度高、环保、电导率高、比表面积大、原子/形态水平的结构可调变性以及在恶劣条件下的优异稳定性,基于碳的无金属材料已成为用于高性能赝电容器和金属空气电池的有前途的先进电极材料。此外,具有明确结构的基于碳的纳米材料可用作绿色催化剂,因为它们在高级氧化过程中有效去除空气中或水中的有机物,从而降低空气/水净化的成本,并通过消除重金属/金属离子的释放避免交叉污染。在这里,综述了用于清洁能源存储的超级电容器和电池中以及用于环境修复的空气/水处理中的基于碳的无金属催化剂的研究与开发。说明了与基于碳的无金属催化剂相关的机械理解和设计原则,以及该新兴领域的挑战和前景。