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Multifunctional Carbon Aerogels with Hierarchical Anisotropic Structure Derived from Lignin and Cellulose Nanofibers for CO2 Capture and Energy Storage

机译:具有来自木质素和纤维素纳米纤维的分层各向异性结构的多功能碳气凝胶,用于CO2捕获和储能

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摘要

In current times, CO2 capture and lightweight energy storage are receiving significant attention and will be vital functions in next-generation materials. Porous carbonaceous materials have great potential in these areas, whereas most of the developed carbon materials still have significant limitations, such as nonrenewable resources, complex and costly processing, or the absence of tailorable structure. In this study, a new strategy is developed for using the currently underutilized lignin and cellulose nanofibers, which can be extracted from renewable resources to produce high-performance multifunctional carbon aerogels with a tailorable, anisotropic pore structure. Both the macro- and microstructure of the carbon aerogels can be simultaneously controlled by carefully tuning the weight ratio of lignin to cellulose nanofibers in the precursors, which considerably influences their final porosity and surface area. The designed carbon aerogels demonstrate excellent performance in both CO2 capture and capacitive energy storage, and the best results exhibit a CO2 adsorption capacity of 5.23 mmol g(-1) at 273 K and 100 kPa and a specific electrical double-layer capacitance of 124 F g(-1) at a current density of 0.2 A g(-1), indicating that they have great future potential in the relevant applications.
机译:在当前时代,CO2捕获和轻量级储能是显着的关注,并且将是下一代材料的重要功能。多孔碳质材料在这些区域具有很大的潜力,而大多数发达的碳材料仍然具有显着的限制,例如不可再生资源,复杂和昂贵的处理,或者没有可定制的结构。在这项研究中,开发了一种新的策略,用于使用目前未充分利用的木质素和纤维素纳米纤维,可以从可再生资源中提取,以生产具有可定制的各向异性孔隙结构的高性能多官能碳气凝胶。可以通过小心地调节在前体中的木质素的纤维素纳米纤维的纤维素纳米纤维的重量比来同时控制碳气凝胶的宏观和微观结构。设计的碳氧气凝胶在二氧化碳捕获和电容储能方面表现出优异的性能,最佳结果表现出5.23mmol G(-1)的CO 2吸附容量,如273 k和100kPa,以及124 f的特定电气双层电容g(-1)在电流密度为0.2ag(-1),表明它们在相关应用中具有很大的未来潜力。

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