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Sulfur doped carbon porous as an efficient catalyst for sustainable energy processes

机译:硫掺杂的碳多孔体作为可持续能源过程的有效催化剂

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The chemical vapor deposition method has been employed to produce carbon porous (CPs) and sulfur-doped carbon porous (SCPs). Mo-Fe/CaCO_3 and Fe/CaCO_3 have been used as the catalysts for the growth step, which Fe/CaCO_3 produced the more appropriate products with smaller diameters in higher yield. Moreover, different growth temperatures were used and among all examined temperatures (750, 800, 850, 900℃), the product produced at 750℃ (SCP750) has the smallest diameter, the highest sulfur content and the least defect in its structure. The product with 0.5% Mo content in the catalyst showed the highest yield and The I_D/I_G ratio of SCP750 is less than that of SCP900. The sulfur content of in SCP750, SCP800, SCP850, and SCP900 (using EDS analyses) are respectively 7.6,3.8,6.9, and 5.7 w/w%. The porosity of the product (SCP750) was examined using adsorption-desorption diagrams, which showed macro-porous structures with the diameters of the pores between 40 and 80 nm and high surface area (770.9 m~2/g). Finally, the abilities of all products (CPs and all SCPs) as a catalyst for sustainable energy processes, oxygen evolution reaction (OER) and hydrogen evolution reaction (HER) were investigated. In both electrochemical reactions, SCPs had better activities than CPs. However, the products showed appropriate efficiencies only in OER reaction and among doped products, SCP750 and SCP800 showed the highest catalytic efficiencies. The results showed that doping is an appropriate way to enhance the catalytic ability of this type of non-metal materials in OER and HER reactions.
机译:化学气相沉积法已被用于生产碳多孔体(CP)和掺杂硫的碳多孔体(SCP)。 Mo-Fe / CaCO_3和Fe / CaCO_3已被用作生长步骤的催化剂,其中Fe / CaCO_3以较高的收率生产了直径较小,更合适的产品。此外,使用了不同的生长温度,并且在所有测试温度(750、800、850、900℃)中,在750℃(SCP750)下生产的产品直径最小,硫含量最高,结构缺陷最少。催化剂中Mo含量为0.5%的产品显示出最高的收率,SCP750的I_D / I_G比小于SCP900。 SCP750,SCP800,SCP850和SCP900(使用EDS分析)中的硫含量分别为7.6、3.8、6.9和5.7 w / w%。使用吸附-解吸图检查产物(SCP750)的孔隙率,该图显示了具有40-80nm的孔直径和高表面积(770.9m〜2 / g)的大孔结构。最后,研究了所有产品(CP和所有SCP)作为可持续能源过程,氧释放反应(OER)和氢释放反应(HER)的催化剂的能力。在两个电化学反应中,SCP均比CP具有更好的活性。但是,这些产品仅在OER反应中显示出适当的效率,而在掺杂产品中,SCP750和SCP800表现出最高的催化效率。结果表明,掺杂是增强这类非金属材料在OER和HER反应中催化能力的合适方法。

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