Thomas Bony, Geng Shiyu, Sain Mohini, Oksman Kristiina
Division of Materials Science, Department of Engineering Sciences and Mathematics, Luleå University of Technology, SE-971 87 Luleå, Sweden.
Mechanical & Industrial Engineering (MIE), University of Toronto, Toronto, ON M5S 3G8, Canada.
Nanomaterials (Basel). 2021 Mar 8;11(3):653. doi: 10.3390/nano11030653.
Various carbon materials have been developed for energy storage applications to address the increasing energy demand in the world. However, the environmentally friendly, renewable, and nontoxic bio-based carbon resources have not been extensively investigated towards high-performance energy storage materials. Here, we report an anisotropic, hetero-porous, high-surface area carbon aerogel prepared from renewable resources achieving an excellent electrical double-layer capacitance. Two different green, abundant, and carbon-rich lignins which can be extracted from various biomasses, have been selected as raw materials, i.e., kraft and soda lignins, resulting in clearly distinct physical, structural as well as electrochemical characteristics of the carbon aerogels after carbonization. The obtained green carbon aerogel based on kraft lignin not only demonstrates a competitive specific capacitance as high as 163 F g and energy density of 5.67 Wh kg at a power density of 50 W kg when assembled as a two-electrode symmetric supercapacitor, but also shows outstanding compressive mechanical properties. This reveals the great potential of the carbon aerogels developed in this study for the next-generation energy storage applications requiring green and renewable resources, lightweight, robust storage ability, and reliable mechanical integrity.
为满足全球日益增长的能源需求,人们开发了各种碳材料用于储能应用。然而,对于高性能储能材料而言,环保、可再生且无毒的生物基碳资源尚未得到广泛研究。在此,我们报道了一种由可再生资源制备的各向异性、异质多孔、高比表面积的碳气凝胶,其具有优异的双电层电容。我们选择了两种不同的绿色、丰富且富含碳的木质素作为原料,这两种木质素可从各种生物质中提取,即硫酸盐木质素和苏打木质素,碳化后得到的碳气凝胶在物理、结构以及电化学特性上呈现出明显差异。基于硫酸盐木质素制备的绿色碳气凝胶,在组装成两电极对称超级电容器时,在功率密度为50 W kg时不仅展现出高达163 F g的竞争比电容和5.67 Wh kg的能量密度,还表现出出色的压缩机械性能。这揭示了本研究中开发的碳气凝胶在下一代储能应用中的巨大潜力,这些应用需要绿色可再生资源、轻质、强大的存储能力以及可靠的机械完整性。