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由聚多巴胺包覆的超交联聚合物热解制备的氮掺杂多孔碳用于增强一氧化碳吸附

N-doped Porous Carbon Derived from the Pyrolysis of a Polydopamine-coated Hypercross-linked Polymer for Enhanced CO Adsorption.

作者信息

Wang Jingtao, Liu Xiaoyan, Zhou Yang, Yang Zhuhong, Tegladza Isaac D, Liu Chang

机构信息

College of Chemical Engineering, Nanjing Tech University, Nanjing, 211816, China.

出版信息

Chemistry. 2024 Dec 18;30(71):e202402855. doi: 10.1002/chem.202402855. Epub 2024 Nov 6.

Abstract

Porous carbon materials can simultaneously capture and convert carbon dioxide, helping to reduce greenhouse gas emissions and using carbon dioxide as a feedstock for the production of valuable chemicals or fuel. In this work, a series of N-doped porous carbons (PDA@HCP(x:y)-T) was prepared; the CO adsorption capacity of the prepared PDA@HCP(x:y)-T was enhanced by coating polydopamine (PDA) on a hypercross-linked polymer (HCP) and then adjusting the mass ratio of PDA to HCP and the carbonization temperature. The results showed that the prepared PDA@HCP(1 : 1)-850 exhibited a high CO adsorption capacity due to abundant micropores (0.6762 cm/g), a high specific surface area (1220.8 m/g), and moderate surface nitrogen content (2.75 %). Notably, PDA@HCP(1 : 1)-850 exhibited the highest CO uptake of 6.46 mmol/g at 0 °C and 101 kPa. Critically, these N-doped porous carbons can also be used as catalysts for the reaction of CO with epichlorohydrin to form chloropropylene carbonate, with chloropropylene carbonate yielding up to 64 % and selectivity of the reaction reaching 94 %. As a result, these N-doped porous carbons could serve as potential candidates for CO capture and conversion due to their high reactivity, excellent CO uptake, and good catalytic performance.

摘要

多孔碳材料可以同时捕获和转化二氧化碳,有助于减少温室气体排放,并将二氧化碳用作生产有价值化学品或燃料的原料。在这项工作中,制备了一系列氮掺杂多孔碳(PDA@HCP(x:y)-T);通过在超交联聚合物(HCP)上包覆聚多巴胺(PDA),然后调整PDA与HCP的质量比以及碳化温度,提高了所制备的PDA@HCP(x:y)-T的CO吸附容量。结果表明,所制备的PDA@HCP(1 : 1)-850由于具有丰富的微孔(0.6762 cm/g)、高比表面积(1220.8 m/g)和适中的表面氮含量(2.75 %),表现出较高的CO吸附容量。值得注意的是,PDA@HCP(1 : 1)-850在0 °C和101 kPa下表现出最高的CO吸附量,为6.46 mmol/g。至关重要的是,这些氮掺杂多孔碳还可以用作CO与环氧氯丙烷反应生成碳酸氯丙烯酯的催化剂,碳酸氯丙烯酯的产率高达64 %,反应选择性达到94 %。因此,这些氮掺杂多孔碳因其高反应活性、优异的CO吸附能力和良好的催化性能,有望成为CO捕获和转化的潜在候选材料。

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