Department of Mechanical and Aerospace Engineering, Missouri University of Science and Technology, Rolla, MO, 65409, USA.
Department of Chemical and Biochemical Engineering, Missouri University of Science and Technology, Rolla, MO, 65409, USA.
Sci Rep. 2018 Jan 30;8(1):1846. doi: 10.1038/s41598-018-20329-w.
This paper presents a new concept for making battery electrodes that can simultaneously control macro-/micro-structures and help address current energy storage technology gaps and future energy storage requirements. Modern batteries are fabricated in the form of laminated structures that are composed of randomly mixed constituent materials. This randomness in conventional methods can provide a possibility of developing new breakthrough processing techniques to build well-organized structures that can improve battery performance. In the proposed processing, an electric field (EF) controls the microstructures of manganese-based electrodes, while additive manufacturing controls macro-3D structures and the integration of both scales. The synergistic control of micro-/macro-structures is a novel concept in energy material processing that has considerable potential for providing unprecedented control of electrode structures, thereby enhancing performance. Electrochemical tests have shown that these new electrodes exhibit superior performance in their specific capacity, areal capacity, and life cycle.
本文提出了一种制造电池电极的新概念,该电极可以同时控制宏观/微观结构,有助于解决当前的储能技术差距和未来的储能需求。现代电池采用层压结构制造,由随机混合的组成材料组成。这种传统方法的随机性为开发新的突破性加工技术提供了可能性,以构建可以提高电池性能的组织良好的结构。在提出的处理方法中,电场(EF)控制基于锰的电极的微观结构,而添加剂制造控制宏观 3D 结构和两个尺度的集成。微/宏观结构的协同控制是能源材料加工中的一个新概念,具有提供对电极结构前所未有的控制的巨大潜力,从而提高性能。电化学测试表明,这些新型电极在比容量、面容量和循环寿命方面表现出优异的性能。