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Oxygen- and nitrogen-chemisorbed carbon nanostructures for Z-scheme photocatalysis applications

机译:氧和氮化学吸附的碳纳米结构,用于Z方案光催化应用

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Here focusing on the very new experimental finding on carbon nanomaterials for solid-state electron mediator applications in Z-scheme photocatalysis, we have investigated different graphene-based nanostructures chemisorbed by various types and amounts of species such as oxygen (O), nitrogen (N) and hydroxyl (OH) and their electronic structures using density functional theory. The work functions of different nanostructures have also been investigated by us to evaluate their potential applications in Z-scheme photocatalysis for water splitting. The N-, O–N-, and N–N-chemisorbed graphene-based nanostructures (32 carbon atoms supercell, corresponding to lattice parameter of about 1 nm) are found promising to be utilized as electron mediators between reduction level and oxidation level of water splitting. The O- or OH-chemisorbed nanostructures have potential to be used as electron conductors between H2-evolving photocatalysts and the reduction level (H+/H2). This systematic study is proposed to understand the properties of graphene-based carbon nanostructures in Z-scheme photocatalysis and guide experimentalists to develop better carbon-based nanomaterials for more efficient Z-scheme photocatalysis applications in the future.
机译:在这里,我们重点研究Z型光催化中用于固态电子介体的碳纳米材料的最新实验发现,我们研究了不同类型和数量的物种(如氧(O),氮(N) )和羟基(OH)及其电子结构,采用密度泛函理论。我们还研究了不同纳米结构的功函数,以评估其在Z方案光催化水分解中的潜在应用。 N-,O-N-和N-N化学吸附的石墨烯基纳米结构(32个碳原子超级电池,对应于约1 nm的晶格参数)有望用作电子的介体,在还原水平和氧化水平之间水分解。 O或OH化学吸附的纳米结构有潜力用作H 2 演化光催化剂与还原水平(H + / H 2 < / sub>)。提出这项系统研究旨在了解Z方案光催化中基于石墨烯的碳纳米结构的特性,并指导实验人员开发更好的碳基纳米材料,以在将来更有效地进行Z方案光催化应用。

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