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首页> 外文期刊>Applied Catalysis, B. Environmental: An International Journal Devoted to Catalytic Science and Its Applications >Fe3+ doping promoted N-2 photofixation ability of honeycombed graphitic carbon nitride: The experimental and density functional theory simulation analysis
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Fe3+ doping promoted N-2 photofixation ability of honeycombed graphitic carbon nitride: The experimental and density functional theory simulation analysis

机译:Fe3 +掺杂促进蜂窝状石墨氮化物的N-2光递质:实验和密度泛函理论模拟分析

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Honeycombed iron doped graphitic carbon nitride with outstanding N-2 photofixation ability is synthesized in this work. Characterization results indicate that Fe3+ inserts at the interstitial position and is stabilized in the electron-rich g-C3N4 through the coordinative Fe-N bonds. Fe3+ sites can chemisorb and activate N-2 molecules, then transfer the photogenerated electrons from the g-C3N4 to adsorbed N-2 molecules. Fe0.05-CN displays the highest NH4+ generation rate, which is approximately 13.5-fold higher than that of neat g-C3N4. Density functional theory simulations prove the N-2 activation effect of Fe3+ sites due to the high adsorption energy and prolonged N equivalent to N bond. Charge density difference result confirms the electrons transfer process from the Fe3+ doping sites to N-2 molecule. DOS results indicate that the electrons of sigma(g)2p orbital (HOMO) in nitrogen atom is delocalized significantly when N-2 adsorbed on Fe3+ doping sites, leading to its orbital energy almost connects to that of pi g*2p orbital (LUMO), which confirming that Fe3+ doping sites can activate the N-2 molecule effectively. The Mulliken charge of nitrogen is -3.1 when the N-2 adsorbed on Fe3+ doping sites, indicating that N-2 molecule is enriched by large number of electrons, which is beneficial to the le attack to form NH4. (C) 2016 Elsevier B.V. All rights reserved.
机译:在这项工作中合成蜂窝状铁掺杂石墨氮化物,具有出色的N-2光涂层能力。表征结果表明Fe3 +在间质位置插入,并通过协调Fe-N键在电子富含电子的G-C3N4中稳定。 Fe3 +位点可以化学is和活化N-2分子,然后将光发生的电子从G-C3N4转移至吸附的N-2分子。 FE0.05-CN显示最高的NH4 +生成速率,比纯G-C3N4高约13.5倍。密度函数理论模拟由于高吸附能量和延长相当于N键的高吸附能而证明Fe3 +部位的N-2活化效果。电荷密度差异结果从Fe3 +掺杂位点确认电子转移过程到N-2分子。 DOS结果表明,当吸附在Fe3 +掺杂位点的N-2,氮原子中的Sigma(G)2P轨道(HOMO)中的电子显着脱落,导致其轨道能量几乎连接到PI G * 2P轨道(LUMO)的轨道能量,确认Fe3 +掺杂位点可以有效地激活N-2分子。当在Fe3 +掺杂位点吸附的N-2时,氮气的Mulliken电荷为-3.1,表明由大量电子富集,这对Le攻击形成NH4是有益的。 (c)2016年Elsevier B.v.保留所有权利。

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