Effects of N-doped concentration in graphene on CO2 adsorption

Ong Kim Le, Viorel Chihaia, Ngoc Son Do
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Abstract

Solving the problem of the environment related to CO2 emission is an urgent and challenging task to prevent the escalation of climate change, which is due to increasing energy demand from fossil fuels and industrial activities. Using graphene to capture CO2 gas is of great interest to mitigate global warming, where CO2 capture by doped graphene has been shown to significantly improve the CO2 adsorption capacity compared to that of pure graphene. In particular, N-doped graphene is a unique structure that was suggested for CO2 capture by the adsorption phenomenon. However, there is no research available to clarify nitrogen doping concentration in graphene on CO2 adsorption. Therefore, this work has been devoted to elucidating the problem using the density functional theory method considering van der Waals interaction. We showed that increasing the doping content of nitrogen by 3.1, 6.3, 9.4, and 12.5% will increase the CO2 adsorption energy, monotonically for N content below 9.4% and significantly for 12.5%. The most favorable adsorption configuration of the CO2 molecule should be parallel to the surface of the N-doped graphene. The structure of the substrate at 12.5% N distorted upon the CO2 adsorption; therefore, the substrate is more active for CO2 capture. The physical meaning underlying the interaction of the N@graphene system is physisorption, which is due to the contribution of the N pz state and the CO2 pz state along the surface normal of the substrate. Increasing the N-doping content shifts down the unoccupied states of the N pz orbital in the conduction band across the Fermi level to the valence band. Hence, the population of the occupied state at the Fermi level increases as increasing the N-doping concentration, leading to the stronger interaction of the CO2 molecule with the N@graphene substrate. The results should be useful for the rational design of suitable N@graphene substrates for CO2 capture and storage applications.
石墨烯中n掺杂浓度对CO2吸附的影响
解决与二氧化碳排放相关的环境问题是一项紧迫而具有挑战性的任务,以防止气候变化的升级,这是由于化石燃料和工业活动对能源的需求不断增加。使用石墨烯捕获二氧化碳气体对减缓全球变暖具有重要意义,与纯石墨烯相比,掺杂石墨烯捕获二氧化碳已被证明可显着提高二氧化碳吸附能力。特别是,氮掺杂石墨烯是一种独特的结构,被认为是二氧化碳捕获的吸附现象。然而,目前还没有研究明确石墨烯中氮掺杂浓度对CO2吸附的影响。因此,本文致力于利用考虑范德华相互作用的密度泛函理论方法来阐明这一问题。结果表明,当氮掺杂量分别增加3.1、6.3、9.4和12.5%时,CO2吸附能增加,且在N含量低于9.4%时单调增加,在12.5%时显著增加。二氧化碳分子最有利的吸附构型应该是平行于氮掺杂石墨烯的表面。在12.5% N下,CO2吸附使基体结构发生畸变;因此,底物对CO2捕获更有活性。N@graphene体系相互作用的物理意义是物理吸附,这是由于沿衬底表面法向的N pz态和CO2 pz态的贡献。随着N掺杂含量的增加,导带中N pz轨道的未占据态沿费米能级向下移动到价带。因此,随着n掺杂浓度的增加,费米能级的占据态居数增加,导致CO2分子与N@graphene底物的相互作用更强。这些结果应该有助于合理设计适合二氧化碳捕获和储存应用的N@graphene基板。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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