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Computational Investigation on the Electronic Structure and Functionalities of a Thiophene-Based Covalent Triazine Framework

机译:基于噻吩的共价三嗪框架的电子结构和功能性的计算研究

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Using the state-of-the-art theoretical method, we have investigated the electronic and optical properties of a thiophene-based covalent triazine framework (TBCTF). We have found that TBCTF is a direct band gap semiconductor. Our calculations reveal that constitutional isomerism is a tool for band gap tuning. The variation of band gap can be achieved by the bilayer TBCTF formation and further can be tuned by the z-axial strain. We have designed a new two-dimensional van der Waals heterostructure g-ZnO/TBCTF, which shows type-II band alignment, ensuring effective separation of photogenerated electron–hole pairs. This composite system also exhibits enhanced absorption in the visible range compared to that of individual g-ZnO and TBCTF monolayers. Therefore, this composite system may find potential application in photovoltaic devices. We have also investigated the hydrogen adsorption ability of TBCTF through Li atom doping. Our results indicate that the calculated hydrogen adsorption energies lie in the range, which is suitable for reversible hydrogen storage under ambient conditions. Therefore, the lithium-doped TBCTF may be a potential candidate for the hydrogen storage material.
机译:使用最先进的理论方法,我们研究了基于噻吩的共价三嗪框架(TBCTF)的电子和光学性质。我们发现TBCTF是直接带隙半导体。我们的计算表明,宪法异构性是带隙调谐的工具。带隙的变化可以通过双层TBCTF形成来实现,并且还可以通过Z轴向应变进行调节。我们设计了一种新的二维范德华异性结构G-ZnO / TBCTF,其显示II型带对准,确保了有效的光发性电子孔对的分离。与单独的G-ZnO和TBCTF单层相比,该复合系统也在可见范围内具有增强的吸收。因此,该复合系统可以在光伏器件中找到潜在的应用。我们还研究了TBCTF通过Li Atom掺杂的氢吸附能力。我们的结果表明,计算出的氢吸附能量位于适用于环境条件下可逆储氢的范围内。因此,锂掺杂的Tbctf可以是储氢材料的潜在候选者。

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