储能:纳米材料的未来
Ekaterina Pomerantseva1,2, Francesco Bonaccorso3,4, Xinliang Feng5,6
1A.J. Drexel Nanomaterials Institute, Drexel University, Philadelphia, PA 19104, USA. ep423@drexel.edu francesco.bonaccorso@iit.it xinliang.feng@tu-dresden.de yicui@stanford.edu gogotsi@drexel.edu.
概括
纳米材料可以增强离子电池和超级电容器等储能设备. 在智能架构中结合功能性纳米粒子是先进多功能电源的关键.
科学领域:
- 材料科学
- 化学学
- 能量储存
背景情况:
- 离子电池对于现代电子和电动汽车至关重要,并获得了2019年诺贝尔化学奖.
- 纳米材料有很大的潜力提高储能系统的性能和发展.
- 现有的储能解决方案面临着纳米材料所能解决的局限性.
研究的目的:
- 提供有关纳米材料应用于储能设备的最新进展的视角.
- 探索纳米材料的各种应用潜力,包括灵活的电子和电网规模的存储.
- 概述克服纳米材料局限性的策略,并指导未来的研究.
主要方法:
- 对电池和超级电容器纳米材料应用的最新进展进行审查.
- 分析创建功能纳米材料架构的策略.
- 讨论纳米材料集成的先进制造方法.
主要成果:
- 纳米材料可以为便携,灵活和可穿戴的电子产品,电力运输和电网存储提供多功能电源.
- 结合功能纳米粒子的智能架构可以缓解高反应性和不稳定性等问题.
- 为了将纳米材料整合到功能设备中,先进的制造是必不可少的.
结论:
- 纳米材料对于下一代储能解决方案至关重要.
- 纳米材料架构的战略设计对于克服固有的局限性至关重要.
- 制造业需要进一步发展,以充分利用纳米材料用于未来的能源应用.
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