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A green trace K2CO3 induced catalytic activation strategy for developing coal-converted activated carbon as advanced candidate for CO2 adsorption and supercapacitors

机译:一种绿色痕量K2CO3诱导的催化活化策略,用于开发煤转化活性炭作为CO 2吸附和超级电容器的先进候选者

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摘要

Aiming to enhancing porosity development and reducing the dosage of activation agents in preparation of activated carbon, a novel green and efficient strategy of trace K2CO3 induced catalytic activation was proposed. In the design, adding small amount of K2CO3 (less than 2% weight ratio of precursor) can significantly reduce the reaction barrier between coal framework and CO2 molecules, thus enhancing pore formation of as-obtained activated carbons. The resulting Ca_AC-1 has short range ordered microcrystalline structure and developed pore structure, even superior to the activated carbon from chemical activation with large dosage of K2CO3 (three times weight ratio of carbon precursor). Evaluated as CO2 adsorbent, Ca_AC-1 a high CO2 adsorption capacity and adsorption-regeneration cycling stability. More importantly, Ca_AC-1 with optimized pore and crystalline structure can deliver excellent supercapacitive performances in term of high energy and power densities (26-35 Wh/kg at 0.338-6.25 kW/kg in organic system) as well as 100% cycling stability. Both experiment and density functional theory (DFT) calculations demonstrate that C-O-K structure can be regenerated in CO2 activation, leading to continuously catalytic effects despite low-dose K2CO3 addition. Combining the low-cost sources, simple preparation procedures and good application performances, the resulting activated carbon holds great potentials for scalable production and applications. Such strategy can also be extented for developing high-performance activated carbons from various kinds of solid carbon sources.
机译:旨在增强孔隙率发育并减少活化剂的制备中活化剂的剂量,提出了一种新的痕量K2CO3诱导催化活化的绿色和有效策略。在设计中,加入少量的K 2 CO 3(小于2%的前体重量)可以显着降低煤骨架和CO 2分子之间的反应屏障,从而增强了孔形成的原样的活性碳。得到的CA_AC-1具有短程有序的微晶结构和开发的孔隙结构,甚至优于来自化学活化的活性炭,具有大剂量的K2CO3(碳前体的三倍重量比)。评估为CO 2吸附剂,CA_AC-1高CO 2吸附能力和吸附 - 再生循环稳定性。更重要的是,具有优化孔隙和晶体结构的CA_AC-1可以在高能和功率密度(26-35WH / kg有机系统中为0.338-6.25 kW / kg)提供优异的超级电容性能,以及100%的循环稳定性。实验和密度官能理论(DFT)计算证明C-O-K结构可以在CO 2活化中再生,尽管低剂量K 2 CO 3加入,但是尽管不断催化催化。结合低成本来源,简单的准备程序和良好的应用性能,所产生的活性炭具有可扩展的生产和应用的巨大潜力。还可以在各种固体碳源开发高性能活化的碳的情况下进行这些策略。

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