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Fe-doped graphene nanosheet as an adsorption platform of harmful gas molecules (CO, CO2, SO2 and H2S), and the co-adsorption in O-2 environments

机译:掺杂铁的石墨烯纳米片作为有害气体分子(CO,CO2,SO2和H2S)的吸附平台以及在O-2环境中的共吸附

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The adsorption of pollutant gases (CO, CO2, SO2 and H2S) onto Fe-doped graphene nanosheets (FeG) is studied on the basis of density functional theory calculations at the PBE/Def2-SVP level of theory. The most stable adsorption configurations, binding characteristics, electronic properties and stability at room temperature of the FeG-Gas interactions is fully analyzed. The gas molecules are chemisorbed onto FeG with adsorption energies in the range of 0.54-1.8 eV, with an enhanced adsorption strength compared to intrinsic graphene. The stability of the FeG-Gas interactions is dominated by Lewis-acid-base interactions, and its strength is sorted as SO2 > CO > H2S > CO2. The adsorption stability is also retained at room temperature (300 K). Due to the strong interaction of SO2, CO, and H2S, FeG could catalyze or activate these gas molecules, suggesting the possibility of FeG as a catalyst substrate. The electron acceptor/donor character of CO, CO2, SO2 and H2S molecules when adsorbed onto FeG causes charge transfer processes that are responsible for the change in conductance of FeG; thus, the response of the HOMO-LUMO gap of FeG under gas adsorption could be useful for sensing applications. Furthermore, the analysis of the co-adsorption in O-2 environments shows that the CO2 interaction turns unstable onto FeG, while the sensing response towards H2S is suppressed. Finally, these results give new insights into the emerging applications of Fe-doped graphene in gas capture/filtration devices, solid-state gas sensors or as a catalyst substrate. (C) 2017 Elsevier B.V. All rights reserved.
机译:在PBE / Def2-SVP理论水平的密度泛函理论计算的基础上,研究了掺杂Fe的石墨烯纳米片(FeG)上吸附污染物气体(CO,CO2,SO2和H2S)。充分分析了FeG-Gas相互作用的最稳定的吸附构型,结合特性,电子性能和在室温下的稳定性。气体分子以0.54-1.8 eV的吸附能化学吸附到FeG上,与本征石墨烯相比具有增强的吸附强度。 FeG-Gas相互作用的稳定性主要受Lewis-酸碱相互作用的影响,其强度排序为SO2> CO> H2S> CO2。吸附稳定性在室温(300 K)下也保持不变。由于SO2,CO和H2S的强相互作用,FeG可以催化或活化这些气体分子,这表明FeG可能作为催化剂底物。当CO,CO2,SO2和H2S分子吸附到FeG上时,其电子受体特性会导致电荷转移过程,从而改变FeG的电导率。因此,FeG的HOMO-LUMO间隙在气体吸附下的响应可用于传感应用。此外,对O-2环境中共吸附的分析表明,CO2相互作用在FeG上变得不稳定,而对H2S的传感响应受到抑制。最后,这些结果为掺铁石墨烯在气体捕获/过滤设备,固态气体传感器或作为催化剂基质中的新兴应用提供了新的见识。 (C)2017 Elsevier B.V.保留所有权利。

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