首页> 外文期刊>Applied Catalysis, B. Environmental: An International Journal Devoted to Catalytic Science and Its Applications >The synergistic effect of graphitic N and pyrrolic N for the enhanced photocatalytic performance of nitrogen-doped graphene/TiO2 nanocomposites
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The synergistic effect of graphitic N and pyrrolic N for the enhanced photocatalytic performance of nitrogen-doped graphene/TiO2 nanocomposites

机译:石墨氮和吡咯氮对氮掺杂石墨烯/ TiO2纳米复合材料增强光催化性能的协同作用

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The functionalization of graphene by nitrogen doping is an excellent method to modify the photocatalytic performance of graphene-based photocatalysts. However, the effect of N-bonding configurations (such as pyrrolic N, pyridinic N and graphitic N) on the photocatalytic performance of nitrogen-doped graphene/TiO2 composite (N-rGO/TiO2) has seldom been investigated. In this study, the different nitrogen sources (NH3, N2H4, and CO(NH2)(2)) have been used to prepare the N-rGO/TiO2 with the aim of obtaining different N-bonding configurations in graphene. It was found that when the NH3 and CO(NH2)(2) were used as the N-doping precursors, the resultant N-rGO/TiO2 photocatalysts mainly showed the pyrrolic N (>70%) and pyridinic N (>10%). As for the N2H4 precursor, the prepared N-rGO/TiO2(N2H4) primarily exhibited the pyrrolic N (ca. 63%) and graphitic N (ca. 37%) in graphene. The photocatalytic results indicated that all the N-rGO/TiO2 showed an obviously enhanced photocatalytic performance compared with the undoped rGO/TiO2. Moreover, the N-rGO/TiO2(N2H4) displayed the highest photocatalytic activity (k = 0.29 min(-1)), which is remarkably larger than that of TiO2 and rGO/TiO2 by a factor of 3.63 and 2.64, respectively. On the basis of the above results, a synergistic effect of graphitic N and pyrrolic N in graphene is proposed to account for the enhanced photocatalytic performance of N-rGO/TiO2(N2N4), namely, the graphitic-N doped graphene serves as an effective electron-transfer mediator for the photo-generated electrons while the pyrrolic-N doped graphene functions as the oxygen-reduction active site to rapidly promote the following interfacial catalytic reaction. It is quite believed that the synthetic effect of electron-transfer mediator and oxygen reduction activation site is a general and effective strategy for the design of high-performance photocatalytic materials. (C) 2015 Elsevier B.V. All rights reserved.
机译:通过氮掺杂对石墨烯进行功能化是改变石墨烯基光催化剂的光催化性能的极好方法。然而,很少研究N键构型(例如吡咯N,吡啶二氮和石墨N)对掺氮石墨烯/ TiO 2复合材料(N-rGO / TiO 2)的光催化性能的影响。在这项研究中,不同的氮源(NH3,N2H4和CO(NH2)(2))已用于制备N-rGO / TiO2,目的是在石墨烯中获得不同的N键构型。发现将NH3和CO(NH2)(2)用作N掺杂前体时,所得N-rGO / TiO2光催化剂主要显示吡咯N(> 70%)和吡啶二氮(> 10%) 。对于N2H4前体,制得的N-rGO / TiO2(N2H4)在石墨烯中主要表现出吡咯N(约63%)和石墨N(约37%)。光催化结果表明,与未掺杂的rGO / TiO2相比,所有的N-rGO / TiO2均表现出明显增强的光催化性能。此外,N-rGO / TiO2(N2H4)表现出最高的光催化活性(k = 0.29 min(-1)),比TiO2和rGO / TiO2分别大3.63和2.64倍。基于以上结果,提出了石墨N和吡咯N在石墨烯中的协同作用,以说明N-rGO / TiO2(N2N4)的增强的光催化性能,即,石墨N掺杂的石墨烯是有效的。光生电子的电子转移介体,而吡咯-N掺杂的石墨烯起着氧还原活性位的作用,以迅速促进随后的界面催化反应。完全相信,电子转移介体和氧还原活化位点的合成作用是设计高性能光催化材料的通用而有效的策略。 (C)2015 Elsevier B.V.保留所有权利。

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