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基于木质纤维素的自支撑混合电极,保留天然孔道,构建分级孔结构,负载活性材料,用于高性能混合氧化物超级电容器。

Lignocellulose-based free-standing hybrid electrode with natural vessels-retained, hierarchically pores-constructed and active materials-loaded for high-performance hybrid oxide supercapacitor.

机构信息

College of Materials Science and Engineering, Nanjing Forestry University, Nanjing 210037, China; Jiangsu Co-Innovation Center of Efficient Processing and Utilization of Forest Resources, China; International Innovation Center for Forest Chemicals and Materials, China; Jiangsu Engineering Research Center of Fast-growing Trees and Agri-fiber Materials, Nanjing 210037, China.

College of Materials Science and Engineering, Nanjing Forestry University, Nanjing 210037, China; Jiangsu Engineering Research Center of Fast-growing Trees and Agri-fiber Materials, Nanjing 210037, China.

出版信息

Int J Biol Macromol. 2021 Sep 30;187:903-910. doi: 10.1016/j.ijbiomac.2021.07.178. Epub 2021 Jul 31.

Abstract

Lignocellulose including cellulose, lignin, and hemicellulose could be extracted from wood, and has been used to prepare carbon electrode. However, complicated extraction greatly increases preparation cost. To achieve maximum utilization of lignocellulose and avoid complicated extraction, wood with porous structure and good mechanical strength is used as carbon precursor. Additionally, chemical activation is commonly used to create micropores to provide high capacitance, but it brings in natural structure destruction, and generation of wastewater during pickling. Moreover, to achieve desirable energy density, multi-step strategy with long duration is required for loading active materials on carbonized lignocellulose (CL). Herein, a one-step method is developed to prepare a free-standing hybrid CL electrode (CLE) by using Lewis acid in three aspects: (1) as structure protection agent, (2) as activating agent, (3) as active materials donor, which bypasses pickling and further avoids the generation of wastewater. Additionally, natural vessels in wood can not only provide large space for active materials loading, but also act as rapid ions diffusion way, simultaneously confining active materials detachment. Benefiting from the synergistic effect of porous structure and Lewis acid, this work not only makes full utilization of lignocellulose, but also makes CLE exhibit excellent performance in hybrid oxide supercapacitor.

摘要

包括纤维素、木质素和半纤维素在内的木质纤维素可从木材中提取,并已被用于制备碳电极。然而,复杂的提取过程大大增加了制备成本。为了实现木质纤维素的最大利用并避免复杂的提取,通常使用具有多孔结构和良好机械强度的木材作为碳前体。此外,化学活化通常用于创建微孔以提供高电容,但这会带来自然结构破坏和酸洗过程中产生废水的问题。此外,为了实现理想的能量密度,需要在碳化木质纤维素(CL)上加载活性材料的多步策略,耗时较长。在此,通过在三个方面使用路易斯酸,开发了一种一步法制备自支撑混合 CL 电极(CLE)的方法:(1)作为结构保护剂,(2)作为活化剂,(3)作为活性材料供体,这绕过了酸洗过程,并进一步避免了废水的产生。此外,木材中的天然容器不仅可以为活性材料的负载提供更大的空间,还可以作为快速离子扩散的途径,同时限制活性材料的脱落。得益于多孔结构和路易斯酸的协同作用,这项工作不仅充分利用了木质纤维素,而且使 CLE 在混合氧化物超级电容器中表现出优异的性能。

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