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Nitrogen modified templated carbons for energy application: Effect of templates and nitrogen precursors

机译:氮改性模板碳用于能源应用:模板和氮前体的影响

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Nitrogen modified templated carbons were prepared by carbonization at 923 K with dwelling time of 3 h. The effects of nitrogen precursors and templates on the surface area, pore structure and nitrogen loading of modified carbons were studied. Acetonitrile and aniline were used as nitrogen precursors, while zeolite and silica gel as inorganic templates. The surface areas of nitrogen modified carbons were reduced as compared to that of unmodified carbons. The effect is more significant for aniline precursor and zeolite template. Irrespective of nitrogen precursors, zeolite and silica gel templates resulted in mainly microporous and mesoporous carbons respectively. The nitrogen modified templated carbons were tested for hydrogen uptake. The hydrogen uptake of silica gel templated carbons increased on incorporation of nitrogen in spite of decrease in surface area. The high uptake of silica gel templated modified carbon can be attributed to higher activation of hydrogen by nitrogen centers present in the carbon network. However, drop in hydrogen uptake for zeolite templated modified carbons may be attributed to significant decrease in surface area. The hydrogen desorption kinetics was observed to depend on porous structure. Presence of micropores offered higher diffusion resistance, making desorption of hydrogen slower. (C) 2016 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:氮气改性的模板碳是通过在923 K下碳化3小时的停留时间来制备的。研究了氮前驱物和模板对改性碳的表面积,孔结构和氮载量的影响。乙腈和苯胺用作氮前体,而沸石和硅胶用作无机模板。与未改性的碳相比,氮改性的碳的表面积减少了。对于苯胺前体和沸石模板,该效果更为显着。不论氮前体如何,沸石和硅胶模板分别主要产生微孔和中孔碳。测试了氮改性的模板碳的氢吸收。尽管表面积减小,但模板氮的引入会增加硅胶模板碳的氢吸收量。硅胶模板化改性碳的高吸收可归因于碳网络中存在的氮中心对氢的更高活化。然而,沸石模板化的改性碳的氢吸收的下降可能归因于表面积的显着降低。观察到氢的解吸动力学取决于多孔结构。微孔的存在提供较高的扩散阻力,从而使氢的解吸较慢。 (C)2016氢能出版物有限公司。由Elsevier Ltd.出版。保留所有权利。

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