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High-Performance Photoelectrochemical Water Oxidation with Phosphorus-Doped and Metal Phosphide Cocatalyst-Modified g-C3N4 Formation Through Gas Treatment

机译:通过气体处理具有磷掺杂和金属磷化物磷化物磷化物和金属磷化物的高性能光电化学水氧化,C6N4形成

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摘要

Graphitic carbon nitride (g-C3N4) has been widely explored as a photocatalyst for water splitting. The anodic water oxidation reaction (WOR) remains a major obstacle for such processes, with issues such as low surface area of g-C3N4, poor light absorption, and low charge-transfer efficiency. In this work, such longtime concerns have been partially addressed with band gap and surface engineering of nanostructured graphitic carbon nitride (g-C3N4). Specifically, surface area and charge-transfer efficiency are significantly enhanced through architecting g-C3N4 on nanorod TiO2 to avoid aggregation of layered g-C3N4. Moreover, a simple phosphide gas treatment of TiO2/g-C3N4 configuration not only narrows the band gap of g-C3N4 by 0.57 eV shifting it into visible range but also generates in situ a metal phosphide (M=Fe, Cu) water oxidation cocatalyst. This TiO2/g-C3N4/FeP configuration significantly improves charge separation and transfer capability. As a result, our non-noble-metal photoelectrochemical system yields outstanding visible light (420 nm) photocurrent: approximately 0.3 mA cm(-2) at 1.23 V and 1.1 mA cm(-2) at 2.0 V versus RHE, which is the highest for a g-C3N4-based photoanode. It is expected that the TiO2/g-C3N4/FeP configuration synthesized by a simple phosphide gas treatment will provide new insight for producing robust g-C3N4 for water oxidation.
机译:石墨碳氮化物(G-C3N4)已被广泛探索为水分裂的光催化剂。阳极水氧化反应(WOR)仍然是这种方法的主要障碍,如G-C3N4的低表面积,光吸收差和低电荷转移效率等问题。在这项工作中,这种长期问题已经部分地解决了纳米结构石墨氮化物(G-C3N4)的带隙和表面工程。具体地,通过纳米棒TiO2上的架构G-C3N4显着提高表面积和电荷 - 转移效率,以避免层状G-C3N4的聚集。此外,TiO2 / G-C3N4配置的简单磷化物气体处理不仅使G-C3N4的带隙缩小为0.57eV将其移入可见范围,而且还产生原位金属磷化物(M = Fe,Cu)水氧化助催化剂。此TiO2 / G-C3N4 / FEP配置显着提高了电荷分离和转移能力。结果,我们的非贵金金属光电化学系统产生突出的可见光(& 420nm)光电流:约0.3 mA cm(-2),1.23V和1.1 mA cm(-2),在2.0V与RHE,哪个基于G-C3N4的PhotoBode是最高的。预期通过简单的磷化物气体处理合成的TiO2 / G-C3N4 / FEP构型将为产生用于水氧化的鲁棒G-C3N4提供新的洞察力。

著录项

  • 来源
    《ChemSusChem》 |2019年第4期|共10页
  • 作者单位

    Guangzhou Univ Coll Chem &

    Chem Engn Guangzhou 510006 Guangdong Peoples R China;

    Northwest Normal Univ Coll Chem &

    Chem Engn Lanzhou 730070 Gansu Peoples R China;

    Northwest Normal Univ Coll Chem &

    Chem Engn Lanzhou 730070 Gansu Peoples R China;

    San Diego State Univ Dept Chem &

    Biochem San Diego CA 92182 USA;

    San Diego State Univ Dept Chem &

    Biochem San Diego CA 92182 USA;

    San Diego State Univ Dept Chem &

    Biochem San Diego CA 92182 USA;

    Northwest Normal Univ Coll Chem &

    Chem Engn Lanzhou 730070 Gansu Peoples R China;

    Xi An Jiao Tong Univ State Key Lab Multiphase Flow Power Engn Int Res Ctr Renewable Energy Xian 710049 Shaanxi Peoples R China;

    IPN CINVESTAV Dept Appl Phys Antigua Carretera Progreso Km 6 Merida 97310 Yucatan Mexico;

    Guangzhou Univ Coll Chem &

    Chem Engn Guangzhou 510006 Guangdong Peoples R China;

    San Diego State Univ Dept Chem &

    Biochem San Diego CA 92182 USA;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学;
  • 关键词

    cocatalyst; doping; graphitic carbon nitride; metal phosphide; photoelectrocatalysis;

    机译:助催化剂;掺杂;石墨碳氮化物;金属磷化物;光电偶联;

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