Harmonic generation of graphene quantum dots in Hartree-Fock approximation
Kainan Chang, Ying Song, Yuwei Shan, Jin Luo Cheng

TL;DR
This paper presents a theoretical study of harmonic generation in graphene quantum dots, emphasizing excitonic effects and the influence of geometric configurations, revealing high tunability and enhanced optical responses.
Contribution
It introduces a Hartree-Fock based framework to analyze harmonic generation in graphene quantum dots, incorporating various approximation methods and excitonic effects.
Findings
Excitonic effects significantly enhance optical responses.
Harmonic generation is highly tunable by geometric configurations.
Only odd-order harmonics are observed in randomly oriented dots.
Abstract
We theoretically investigate harmonic generation in graphene quantum dots under linearly polarized optical pulses, focusing on excitonic effects. Combining the tight-binding model and the single-particle density matrix approach, we derive a semiconductor Bloch equation under a static-screened Hartree-Fock approximation. This framework characterizes the electron-electron interaction through local Hartree potentials for direct Coulomb interaction and nonlocal Fock potentials for exchange interaction. Distinct confgurations of Hartree and Fock terms yield various approximation methods, including independent-particle approximation, mean-feld approximation, random phase approximation, and excitonic effects. We thoroughly analyze how these approximation methods affect the electronic energy levels, linear optical absorption, and nonlinear harmonic generation. Within excitonic effects, we…
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Taxonomy
TopicsGraphene research and applications · Quantum and electron transport phenomena · Molecular Junctions and Nanostructures
