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首页> 外文期刊>Carbon: An International Journal Sponsored by the American Carbon Society >Theoretical insights into tunable optical and electronic properties of graphene quantum dots through phosphorization
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Theoretical insights into tunable optical and electronic properties of graphene quantum dots through phosphorization

机译:石墨烯量子点通过磷化的可调光和电子性质的理论见解

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Doping heteroatoms or covalent bonding with specific groups is an effective route to modify optical and electronic properties of graphene quantum dots (GQDs). In this work, effects of five phosphorous (P) bonding configurations (i.e., C2P, C2PO, C2PO2, C3P, and C3PO) on optical and electronic properties of GQDs are investigated using density functional theory (DFT) and time-dependent DFT (TD-DFT). Optical absorption spectra, HOMO-LUMO gaps, and excited states of GQDs doped with different P bonding configurations at various locations are calculated to reveal electron transition processes. Due to the availability of vacant third orbitals,. can have various stereochemistry and bonding. It is demonstrated that P bonding configurations with different geometrical configurations have various influences on the spectra of doped GQDs, and the existence of P=O double bond in C2PO2 and C3PO configurations can induce multiple absorption peaks in P-doped GQDs. The calculated HOMO-LUMO gap has a larger gap reduction when P exhibits the sp(3) hybridization. According to excited state analysis, P-doping with tetrahedral-like configurations has more evident effect on electronic structure of P-doped GQDs, while pyramidal-like configurations have noticeable charge transfer ability in the absorption process. (C) 2019 Elsevier Ltd. All rights reserved.
机译:掺杂杂原子或与特定基团的共价键合是改变石墨烯量子点(GQDS)的光学和电子性质的有效途径。在这项工作中,使用密度泛函理论(DFT)和时间依赖的DFT(TD -dft)。计算光学吸收光谱,HOMO-LUMO间隙和掺杂有不同P粘合配置的GQD的兴奋状态,以显示电子转型过程。由于空缺的第三轨道的可用性。可以具有各种立体化学和粘合。结果证明,具有不同几何配置的P键合配置对掺杂GQD的光谱具有各种影响,并且C2PO2和C3PO构型中的P = O双键的存在可以诱导P掺杂GQD中的多个吸收峰。当P表现出SP(3)杂交时,计算的同性恋距离具有更大的间隙减少。根据激发的状态分析,具有四面体配置的p掺杂对P掺杂GQD的电子结构具有更明显的影响,而金字塔状配置在吸收过程中具有明显的电荷转移能力。 (c)2019年elestvier有限公司保留所有权利。

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