碳化
材料科学
氢氧化钾
超级电容器
化学工程
碳纤维
多孔性
水热碳化
氢氧化钠
电化学
纳米技术
电极
复合材料
化学
扫描电子显微镜
物理化学
复合数
工程类
作者
Yasuhiko Kitamoto,Kiet Le Anh Cao,Phong Hoai Le,Oktaviardi Bityasmawan Abdillah,Ferry Iskandar,Takashi Ogi
出处
期刊:Langmuir
[American Chemical Society]
日期:2022-03-08
卷期号:38 (11): 3540-3552
被引量:55
标识
DOI:10.1021/acs.langmuir.1c03489
摘要
A green synthetic strategy to design biomass-derived porous carbon electrode materials with precisely tailored structure and morphology has always been a challenging goal because these materials can fulfill the demands of next-generation supercapacitors and other electrochemical devices. Potassium hydroxide (KOH) is extensively utilized as an activator since it can produce porous carbon with high specific surface area and well-developed porous channels. The exploitation of sodium hydroxide (NaOH) as an activating agent is less referenced in the literature, although it offers some advantages over KOH in terms of low cost, less corrosiveness, and simple handling procedure, all of which are appealing particularly from an industrial viewpoint. The motivation for this present study is to fabricate porous carbon spheres in a sustainable manner via a spray drying approach followed by a carbonization process, using Kraft lignin as the carbon precursor and NaOH as an alternative activation agent instead of the high-cost and high-corrosive KOH for the first time. The structure of carbon particles can be accurately transitioned from a compact to hollow structure, and the surface textural properties can be easily tuned by altering the NaOH concentration. The obtained porous carbon spheres were applied as highly packed thin film electrode materials for supercapacitor devices. The specific capacitance value of porous carbon spheres with a highly compact structure (high packing density) is 66.5 F g-1, which is higher than that of commercial activated carbon and other biomass-derived carbon. This work provides a green processing for producing low-cost and environment-friendly porous carbon spheres from abundant Kraft lignin and important insight for selecting NaOH as an activator to tailor the morphology and structure, which represents an economical and sustainable approach for energy storage devices.
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