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首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >K2CO3 activation enhancing the graphitization of porous lignin carbon derived from enzymatic hydrolysis lignin for high performance lithium-ion storage
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K2CO3 activation enhancing the graphitization of porous lignin carbon derived from enzymatic hydrolysis lignin for high performance lithium-ion storage

机译:K2CO3活化增强了衍生自酶水解木质素的多孔木质素碳的石墨化,用于高性能锂离子储存

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摘要

As an abundant natural aromatic polymer with high carbon content, lignin can be regarded as an abundant carbon matrix precursor to develop cost-effective and environmental friendly porous carbon for energy storage materials. However, the porous lignin-derived carbon remains a great challenge as an anode for Li-ion batteries due to its low degree of graphitization. In this paper, a low-cost, productive and scalable industrial method has been adopted to fabricate highly graphitized lignin-based porous carbon (PLC-EHL-K2CO3) with K2CO3 activation using enzymatic hydrolysis lignin (EHL) as a raw material. PLC-EHL-K2CO3 was composed of multilevel lamellar structure possessing high specific surface area and macro- and mesoporous. Notably, the graphitization of PLC-EHL-K2CO3 was significantly improved compared with the common KOH activation. Meanwhile, the structure of lignin is an important factor affecting the structure of PLC, such as the molecular weight and oxygen functional groups. The high specific surface area, large pore volume and unique multilevel lamellar morphology bestow PLC an excellent lithium storage performance, and PLC-EHL-K2CO3 electrode displays a desirable reversible capacity of 520 mAh.g(-1) at a current density of 200 mA g(-1) over 200 cycles and increases 47.3% than PLC-EHL-KOH, and even at 1 A g(-1) a specific capacity of 260 mAh.g(-1) can be retained after 1000 cycles. This higher graphitization porous carbon material from low-cost renewable lignin is a good candidate for lithium storage equipment. (C) 2019 Published by Elsevier B.V.
机译:为具有高的碳含量的丰富的天然芳族聚合物,木质素可被视为一种丰富的碳基质前体的开发成本有效和环境友好的多孔碳用于能量存储材料。然而,多孔木质素衍生碳仍然是一个巨大的挑战,作为锂离子电池的阳极由于其石墨化度低。在本文中,一个低成本,生产性和可扩展的工业方法已被采用木质素系多孔碳(PLC-EHL-K 2 CO 3)以K2CO3激活使用酶水解木质素(EHL)作为原料来制造高度石墨化。 PLC-EHL-K 2 CO 3的组成具有高的比表面积和宏观和中孔多级层状结构。值得注意的是,PLC-EHL-K 2 CO 3的石墨化与共用KOH活化相比被显著改善。同时,木质素的结构是影响PLC,的结构的一个重要因素,如分子量和氧官能团。在200毫安的电流密度下的高的比表面积,大的孔体积和独特的多级层状形态赋予PLC的优异的锂存储性能,以及PLC-EHL-K 2 CO 3电极显示器520 mAh.g(-1)的一个理想的可逆容量克(-1)超过200个循环和增加比PLC-EHL-KOH 47.3%,甚至在1 A G(-1)260 mAh.g的比容量(-1)可以保留1000次循环之后。从低成本可再生木质素这种较高的石墨化的多孔碳材料为锂存储设备的良好候选者。 (c)2019年由elestvier b.v发布。

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