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A Facile and Low-Cost Route to Heteroatom Doped Porous Carbon Derived from Broussonetia Papyrifera Bark with Excellent Supercapacitance and CO2 Capture Performance

机译:一种以优异的超级电容和CO2捕集性能从杂草布鲁氏菌皮衍生出杂原子掺杂的多孔碳的简便而低成本的方法

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摘要

In this work, we present a facile and low-cost approach to synthesize heteroatom doped porous carbon via hydrothermal treatment of stem bark of broussonetia papyrifera (BP) as the biomass precursor in diluted sulfuric acid, and following thermal activation by KOH at 800 °C. The morphology, structure and textural property of the prepared porous carbon (PC) are investigated by scanning electron microscopy, transmission electron microscopy, N2 sorption isotherms, and X-ray photoelectron spectroscopy. The porous carbon possesses a high BET surface area of 1759 m2 g−1 and an average pore size of 3.11 nm as well as hetero-oxygen (9.09%) and nitrogen (1.7%) doping. Such porous carbon shows outstanding capacitive performances of 416 F g−1 and 300 F g−1 in three and two-electrode systems, respectively. As a solid-state adsorbent, the obtained porous carbon has an excellent CO2 adsorption capacity at ambient pressures of up to 6.71 and 4.45 mmol g−1 at 0 and 25 °C, respectively. The results present one novel precursor-synthesis route for facile large-scale production of high performance porous carbon for a variety of great applications including energy storage and CO2 capture.
机译:在这项工作中,我们提出了一种简便且低成本的方法,通过对作为稀有硫酸中生物质前体的布鲁氏假单胞菌(BP)的茎皮进行水热处理,然后通过KOH在800 C下进行热活化,来合成杂原子掺杂的多孔碳。 。通过扫描电子显微镜,透射电子显微镜,N2吸附等温线和X射线光电子能谱研究了制备的多孔碳(PC)的形态,结构和织构性质。多孔碳具有1759 m 2 g -1 的高BET表面积和3.11 nm的平均孔径以及杂氧(9.09%)和氮(1.7%)掺杂。这种多孔碳在三电极和两电极系统中分别显示出416 F g -1 和300 F g -1 的出色电容性能。作为固态吸附剂,所获得的多孔碳在0和25°C的环境压力下分别具有出色的CO2吸附能力,分别高达6.71和4.45 mmol g -1 。结果提供了一种新颖的前体合成路线,可用于大规模大规模生产高性能多孔碳,用于包括能量存储和CO2捕集在内的各种重大应用。

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