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能源存储:纳米材料带来的未来。

Energy storage: The future enabled by nanomaterials.

机构信息

A.J. Drexel Nanomaterials Institute, Drexel University, Philadelphia, PA 19104, USA.

Department of Materials Science and Engineering, Drexel University, Philadelphia, PA 19104, USA.

出版信息

Science. 2019 Nov 22;366(6468). doi: 10.1126/science.aan8285.

Abstract

Lithium-ion batteries, which power portable electronics, electric vehicles, and stationary storage, have been recognized with the 2019 Nobel Prize in chemistry. The development of nanomaterials and their related processing into electrodes and devices can improve the performance and/or development of the existing energy storage systems. We provide a perspective on recent progress in the application of nanomaterials in energy storage devices, such as supercapacitors and batteries. The versatility of nanomaterials can lead to power sources for portable, flexible, foldable, and distributable electronics; electric transportation; and grid-scale storage, as well as integration in living environments and biomedical systems. To overcome limitations of nanomaterials related to high reactivity and chemical instability caused by their high surface area, nanoparticles with different functionalities should be combined in smart architectures on nano- and microscales. The integration of nanomaterials into functional architectures and devices requires the development of advanced manufacturing approaches. We discuss successful strategies and outline a roadmap for the exploitation of nanomaterials for enabling future energy storage applications, such as powering distributed sensor networks and flexible and wearable electronics.

摘要

锂离子电池为便携式电子设备、电动汽车和固定储能系统提供动力,它被授予 2019 年诺贝尔化学奖。纳米材料的发展及其相关的电极和器件加工可以提高现有储能系统的性能和/或开发。我们提供了一个视角,介绍了纳米材料在储能设备(如超级电容器和电池)中的应用的最新进展。纳米材料的多功能性可以为便携式、灵活、可折叠和分布式电子产品、电动交通以及电网规模的存储提供动力,也可以集成在生活环境和生物医学系统中。为了克服纳米材料由于高表面积而导致的高反应性和化学不稳定性的限制,应该在纳米和微尺度上的智能结构中组合具有不同功能的纳米粒子。将纳米材料集成到功能结构和设备中需要开发先进的制造方法。我们讨论了成功的策略,并为利用纳米材料为未来的储能应用(如为分布式传感器网络和灵活可穿戴电子设备供电)制定了路线图。

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