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将红茶废弃生物质回收利用制备用于长寿命超级电容器电极的活性多孔碳

Recycling Black Tea Waste Biomass as Activated Porous Carbon for Long Life Cycle Supercapacitor Electrodes.

作者信息

Eom Hojong, Kim Jooyoung, Nam Inho, Bae Sunyoung

机构信息

School of Chemical Engineering and Materials Science, Department of Intelligent Energy and Industry, Department of Advanced Materials Engineering, Chung-Ang University, Seoul 06974, Korea.

Department of Chemistry, Seoul Women's University, Seoul 01797, Korea.

出版信息

Materials (Basel). 2021 Nov 2;14(21):6592. doi: 10.3390/ma14216592.

Abstract

Value creation through waste recycling is important for a sustainable society and future. In particular, biomass, which is based on crops, is a great recyclable resource that can be converted into useful materials. Black tea is one of the most cultivated agricultural products in the world and is mostly discarded after brewing. Herein, we report the application of black tea waste biomass as electrode material for supercapacitors through the activation of biomass hydrochar under various conditions. Raw black tea was converted into hydrochar via a hydrothermal carbonization process and then activated with potassium hydroxide (KOH) to provide a large surface area and porous structure. The activation temperature and ratio of KOH were controlled to synthesize the optimal black tea carbon (BTC) with a large surface area and porosity suitable for use as electrode material. This method suggests a direction in which the enormous amount of biomass, which is simply discarded, can be utilized in the energy storage system. The synthesized optimal BTC has a large surface area of 1062 m and specific capacitance up to 200 F∙g at 1 mV∙s. Moreover, it has 98.8% retention of charge-discharge capacitance after 2000 cycles at the current density of 5 A∙g.

摘要

通过废物回收创造价值对可持续社会和未来至关重要。特别是基于农作物的生物质,是一种可转化为有用材料的优质可回收资源。红茶是世界上种植最广泛的农产品之一,冲泡后大多被丢弃。在此,我们报告了通过在各种条件下活化生物质水热炭,将红茶废弃生物质用作超级电容器电极材料的应用。生红茶通过水热碳化过程转化为水热炭,然后用氢氧化钾(KOH)活化以提供大表面积和多孔结构。控制KOH的活化温度和比例以合成具有适合用作电极材料的大表面积和孔隙率的最佳红茶炭(BTC)。该方法为大量被简单丢弃的生物质可用于储能系统指明了一个方向。合成的最佳BTC具有1062 m的大表面积,在1 mV∙s时比电容高达200 F∙g。此外,在5 A∙g的电流密度下进行2000次循环后,其充放电电容保留率为98.8%。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3ade/8585355/bf7d0c0ef6b3/materials-14-06592-g001.jpg

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