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碳-水泥超级电容器作为一种可扩展的大容量储能解决方案。

Carbon-cement supercapacitors as a scalable bulk energy storage solution.

作者信息

Chanut Nicolas, Stefaniuk Damian, Weaver James C, Zhu Yunguang, Shao-Horn Yang, Masic Admir, Ulm Franz-Josef

机构信息

Department of Civil and Environmental Engineering, Massachusetts Institute of Technology, Cambridge, MA 02139.

Wyss Institute for Biologically Inspired Engineering, Harvard University, Cambridge, MA 02138.

出版信息

Proc Natl Acad Sci U S A. 2023 Aug 8;120(32):e2304318120. doi: 10.1073/pnas.2304318120. Epub 2023 Jul 31.

Abstract

The large-scale implementation of renewable energy systems necessitates the development of energy storage solutions to effectively manage imbalances between energy supply and demand. Herein, we investigate such a scalable material solution for energy storage in supercapacitors constructed from readily available material precursors that can be locally sourced from virtually anywhere on the planet, namely cement, water, and carbon black. We characterize our carbon-cement electrodes by combining correlative EDS-Raman spectroscopy with capacitance measurements derived from cyclic voltammetry and galvanostatic charge-discharge experiments using integer and fractional derivatives to correct for rate and current intensity effects. Texture analysis reveals that the hydration reactions of cement in the presence of carbon generate a fractal-like electron-conducting carbon network that permeates the load-bearing cement-based matrix. The energy storage capacity of this space-filling carbon black network of the high specific surface area accessible to charge storage is shown to be an intensive quantity, whereas the high-rate capability of the carbon-cement electrodes exhibits self-similarity due to the hydration porosity available for charge transport. This intensive and self-similar nature of energy storage and rate capability represents an opportunity for mass scaling from electrode to structural scales. The availability, versatility, and scalability of these carbon-cement supercapacitors opens a horizon for the design of multifunctional structures that leverage high energy storage capacity, high-rate charge/discharge capabilities, and structural strength for sustainable residential and industrial applications ranging from energy autarkic shelters and self-charging roads for electric vehicles, to intermittent energy storage for wind turbines and tidal power stations.

摘要

可再生能源系统的大规模实施需要开发储能解决方案,以有效管理能源供需之间的不平衡。在此,我们研究了一种可扩展的储能材料解决方案,用于超级电容器,该超级电容器由易于获得的材料前驱体制成,这些前驱体几乎可以从地球上的任何地方本地获取,即水泥、水和炭黑。我们通过将相关的能谱-拉曼光谱与循环伏安法和恒电流充放电实验得出的电容测量结果相结合,对我们的碳-水泥电极进行了表征,并使用整数和分数导数来校正速率和电流强度效应。纹理分析表明,在碳存在的情况下,水泥的水化反应会生成一个类似分形的电子导电碳网络,该网络渗透到承载水泥基基质中。这种可用于电荷存储的高比表面积的填充空间炭黑网络的储能容量显示为一个强度量,而碳-水泥电极的高倍率性能由于可用于电荷传输的水化孔隙率而表现出自相似性。储能和倍率性能的这种强度和自相似性质为从电极尺度到结构尺度的大规模扩展提供了机会。这些碳-水泥超级电容器的可用性通用性和可扩展性为多功能结构的设计开辟了前景,这些结构利用高储能容量、高倍率充放电能力和结构强度,用于可持续的住宅和工业应用,从能源自给自足的避难所和电动汽车的自充电道路,到风力涡轮机和潮汐电站间歇性储能。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f611/10410735/ff775ec4ba3f/pnas.2304318120fig01.jpg

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