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The roles of buckled geometry and water environment in the excitonic properties of graphitic C3N4

机译:的角色扣几何和水环境的激子的性质石墨C3N4

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摘要

The exciton plays a crucial role in two-dimensional materials involved in photocatalytic water splitting, where its properties are determined not only by the material itself, but also by the surrounding water environment. By the framework of many-body perturbation theory, we investigated the excitonic effects in pure and water-adsorbed g-C3N4. It is shown that the excitonic properties are very sensitive to the geometry of g-C3N4 and the adsorption of water molecules. Firstly, the optical band gap, i.e. the first bright excitonic energy of pure g-C3N4 decreases remarkably from a high symmetry planar structure (3.8 eV) to a P1 buckled configuration (2.7 eV). Secondly, the hydrogen bonds between water and g-C3N4 induce the generation of interface excitons. With a reduced binding energy (at least 0.2 eV), interface excitons can contribute to a more efficient separation of electrons and holes. Our work provides an insight into the excitation mechanism of 2D photocatalysts in a real environment.
机译:激子的起着至关重要的作用二维材料参与光催化水分解,它的地方不仅属性决定的材料本身,而且周围水环境。微扰理论,我们调查了在纯和water-adsorbed激子的影响g-C3N4。非常敏感的几何g-C3N4和水分子的吸附。光学带隙,即第一个明亮的激子的能量的纯g-C3N4显著的降低高对称平面结构(3.8 eV) P1扣配置(2.7 eV)。水之间的氢键和g-C3N4诱导激子的生成界面。减少结合能(至少0.2 eV),界面激子可以贡献更多高效的电子和空穴的分离。提供了一个洞察激励工作2 d催化剂在实际的机制环境。

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