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N-rich porous carbon with high CO2 capture capacity derived from polyamine-incorporated metal-organic framework materials

机译:含多胺的金属-有机骨架材料衍生的具有高CO2捕集能力的富氮多孔碳

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N-doped porous carbon has a wide range of applications in many fields, such as gas adsorption and super-capacitor, which has stimulated active research for developing efficient strategies to fabricate N-rich porous carbon. In the present study, a series of N-rich porous carbons are derived from polyamine-incorporated metal-organic framework materials (MOFs). Results show that the N content of as-prepared porous carbon is greatly increased by loading polyethyleneimine (PEI) into ZIF-70 frameworks because the loaded PEI can adsorb onto the pore walls of the ZIF-70 and simultaneously supply carbon and N sources during the carbonization process. As a result, the surface area of the as-prepared sample is also increased. In addition, the N content of the porous carbon can be tuned by PEI loadings and carbonization temperature. The as-prepared N-rich porous carbons exhibit greatly enhanced CO2-selective adsorption capacity compared to ZIF-70 and porous carbon derived from ZIF-70. Here the CO2 capture capacity of the as-prepared N-rich porous increases with increasing N content due to considerable interaction affinity between doped N and CO2 molecules. Thus, the as-prepared porous carbon with N content of 11.08 wt% displays high CO2 uptake of 4.86 mmol g(-1) at 0 degrees C and 1 bar, albeit it has a moderate surface area of 652 m(2) g(-1). Moreover, the N-rich porous carbon clearly shows an excellent separation performance for CO2-over-N-2 and CO2-over-CH4. Overall, polyamine-incorporated MOFs are an efficient strategy for controllable fabrication of N-rich porous carbon. The resulting products display a high CO2-selective capture performance. It should be noted that, to achieve the optimal CO2 capture ability, a comprehensive optimization of the polyamine-MOFs-derived porous carbon should be performed.
机译:掺氮多孔碳在许多领域具有广泛的应用,例如气体吸附和超级电容器,这激发了积极的研究,以开发有效的策略来制造富氮多孔碳。在本研究中,一系列富含N的多孔碳衍生自掺入多胺的金属有机骨架材料(MOF)。结果表明,通过将聚乙烯亚胺(PEI)加载到ZIF-70骨架中,制备的多孔碳的N含量大大增加,因为加载的PEI可以吸附到ZIF-70的孔壁上,并同时提供碳和氮源。碳化过程。结果,制备的样品的表面积也增加。另外,多孔碳的N含量可以通过PEI负荷和碳化温度来调节。与ZIF-70和衍生自ZIF-70的多孔碳相比,如此制备的富氮多孔碳表现出大大提高的CO2选择性吸附能力。在这里,由于掺杂的N和CO 2分子之间的相当大的相互作用亲合力,所制备的富N多孔材料的CO 2捕集能力随着N含量的增加而增加。因此,制备的N含量为11.08 wt%的多孔碳在0摄氏度和1巴下显示出4.86 mmol g(-1)的高CO2吸收量,尽管它具有652 m(2)g( -1)。此外,富N的多孔碳清楚地显示了CO2-over-N-2和CO2-over-CH4的优异分离性能。总体而言,掺聚多胺的MOF是可控​​地制造富氮多孔碳的有效策略。所得产品显示出高的二氧化碳选择性捕集性能。应该注意的是,为了获得最佳的CO 2捕获能力,应该对源自多胺-MOFs的多孔碳进行全面的优化。

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