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Density functional theory study on a nitrogen-rich carbon nitride material C3N5 as photocatalyst for CO2 reduction to C1 and C2 products

机译:密度泛函理论研究富含氮碳氮化物材料C3N5作为C1和C2产物的光催化剂

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摘要

A new-type nitrogen-rich carbon nitride material C3N5 has been synthesized recently, in which the C:N ratio increases from 3:4 in g-C3N4 to 3:5 due to the introduction of azo linkage (-N=N-) connecting segments in two C6N7 units. Herein, C3N5 as a photocatalyst for CO2 reduction was investigated by density functional theory methods. The electronic and optical properties indicate that C3N5 has a longer visible-light region with 2.0 eV of band gap in comparison with g-C3N4. The spatial distributions of the highest occupied molecular orbital (HOMO) and the lowest unoccupied molecular orbital (LUMO) show that the pi network of C3N5 is extended by introducing -N=N- linkage, which results in much higher photocatalytic efficiency than g-C3N4. The Gibbs free energies for possible CO2 reaction paths on C3N5 were computed. The results show that CO2 can be reduced to CH4 with a low limiting potential of -0.54 V and to CH3CH2OH with a low limiting potential of -0.61 V, which all driven by solar energy. The present work is expected to provide useful guide for new-type nitrogen-rich C3N5 as promising photocatalyst for CO2 reduction reaction (CO2RR). (C) 2020 Elsevier Inc. All rights reserved.
机译:最近合成了一种新型富氮碳氮化物材料C3N5,由于在两个C6N7单元中引入了偶氮键(-N=N-)连接段,碳氮比从g-C3N4中的3:4增加到了3:5。本文采用密度泛函理论方法研究了C3N5作为光催化剂的CO2还原性能。电子和光学性质表明,与g-C3N4相比,C3N5具有更长的可见光区域,带隙为2.0 eV。最高占据分子轨道(HOMO)和最低未占据分子轨道(LUMO)的空间分布表明,通过引入-N=N-键,C3N5的pi网络得以扩展,从而导致比g-C3N4更高的光催化效率。计算了C3N5上可能的CO2反应路径的吉布斯自由能。结果表明,在太阳能的驱动下,CO2可以被还原为低限制电位为-0.54V的CH4和低限制电位为-0.61V的CH3CH2OH。本文的工作有望为新型富氮C3N5作为CO2还原反应(CO2RR)的光催化剂提供有益的指导。(C) 2020爱思唯尔公司版权所有。

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