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从草到电池阳极:用于锂存储的农业生物质大麻衍生碳

From grass to battery anode: agricultural biomass hemp-derived carbon for lithium storage.

作者信息

Um Ji Hyun, Ahn Chi-Yeong, Kim Jinsoo, Jeong Mihee, Sung Yung-Eun, Cho Yong-Hun, Kim Seung-Soo, Yoon Won-Sub

机构信息

Department of Energy Science, Sungkyunkwan University Suwon 16419 South Korea

School of Chemical and Biological Engineering, Seoul National University Seoul 08826 South Korea.

出版信息

RSC Adv. 2018 Sep 18;8(56):32231-32240. doi: 10.1039/c8ra06958a. eCollection 2018 Sep 12.

Abstract

Biomass-derived carbon, as a low-cost material source, is an attractive choice to prepare carbon materials, thus providing an alternative to by-product and waste management. Herein, we report the preparation of carbon from hemp stem as a biomass precursor through a simple, low-cost, and environment-friendly method with using steam as the activating agent. The hemp-derived carbon with a hierarchically porous structure and a partial graphitization in amorphous domains was developed, and for the first time, it was applied as an anode material for lithium-ion battery. Natural hemp itself delivers a reversible capacity of 190 mA h g at a rate of 300 mA g after 100 cycles. Ball-milling of hemp-derived carbon is further designed to control the physical properties, and consequently, the capacity of milled hemp increases to 300 mA h g along with excellent rate capability of 210 mA h g even at 1.5 A g. The milled hemp with increased graphitization and well-developed meso-porosity is advantageous for lithium diffusion, thus enhancing electrochemical performance both diffusion-controlled intercalation/deintercalation and surface-limited adsorption/desorption. This study not only demonstrates the application of hemp-derived carbon in energy storage devices, but also guides a desirable structural design for lithium storage and transport.

摘要

生物质衍生碳作为一种低成本的材料来源,是制备碳材料的一个有吸引力的选择,从而为副产品和废物管理提供了一种替代方案。在此,我们报告了通过一种简单、低成本且环境友好的方法,以蒸汽作为活化剂,从大麻茎中制备碳材料。制备出了具有分级多孔结构且在非晶域中部分石墨化的大麻衍生碳,并首次将其用作锂离子电池的负极材料。天然大麻本身在100次循环后,以300 mA g的电流密度可提供190 mA h g的可逆容量。进一步设计了对大麻衍生碳进行球磨以控制其物理性质,结果,球磨后的大麻容量增加到300 mA h g,即使在1.5 A g的电流密度下也具有210 mA h g的优异倍率性能。石墨化程度提高且介孔发达的球磨大麻有利于锂的扩散,从而增强了扩散控制的嵌入/脱嵌和表面限制的吸附/解吸过程中的电化学性能。本研究不仅证明了大麻衍生碳在储能装置中的应用,还为锂的存储和传输提供了理想的结构设计指导。

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