首页> 外文期刊>Scientific reports. >Solid-state supercapacitors with rationally designed heterogeneous electrodes fabricated by large area spray processing for wearable energy storage applications
【24h】

Solid-state supercapacitors with rationally designed heterogeneous electrodes fabricated by large area spray processing for wearable energy storage applications

机译:固态超级电容器,其合理设计的异质电极通过大面积喷涂工艺制造,用于可穿戴式储能应用

获取原文
           

摘要

Supercapacitors are in demand for short-term electrical charge and discharge applications. Unlike conventional supercapacitors, solid-state versions have no liquid electrolyte and do not require robust, rigid packaging for containment. Consequently they can be thinner, lighter and more flexible. However, solid-state supercapacitors suffer from lower power density and where new materials have been developed to improve performance, there remains a gap between promising laboratory results that usually require nano-structured materials and fine-scale processing approaches, and current manufacturing technology that operates at large scale. We demonstrate a new, scalable capability to produce discrete, multi-layered electrodes with a different material and/or morphology in each layer, and where each layer plays a different, critical role in enhancing the dynamics of charge/discharge. This layered structure allows efficient utilisation of each material and enables conservative use of hard-to-obtain materials. The layered electrode shows amongst the highest combinations of energy and power densities for solid-state supercapacitors. Our functional design and spray manufacturing approach to heterogeneous electrodes provide a new way forward for improved energy storage devices.
机译:超级电容器需要短期的充电和放电应用。与传统的超级电容器不同,固态版本没有液体电解质,不需要坚固,坚固的包装即可容纳。因此,它们可以更薄,更轻和更灵活。但是,固态超级电容器的功率密度较低,并且已经开发出新的材料来改善性能,但通常需要纳米结构材料和精细加工方法的有希望的实验室结果与当前运行的制造技术之间仍然存在差距。大规模地。我们展示了一种新的,可扩展的功能,可以在每层中生产具有不同材料和/或形态的离散多层电极,并且其中每一层在增强充电/放电动力学方面都扮演着不同的关键角色。这种分层结构可以有效利用每种材料,并可以保守地使用难以获得的材料。对于固态超级电容器,层状电极显示出最高的能量和功率密度组合。我们针对异质电极的功能设计和喷涂制造方法为改进储能设备提供了一条新途径。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号