Suo Pengfei, Mao Li, Shi Jing, Xu Hongxing
School of Physics and Technology, Wuhan University, Wuhan 430072, China.
Wuhan Institute of Quantum Technology, Wuhan 430072, China.
Nanomaterials (Basel). 2022 May 20;12(10):1746. doi: 10.3390/nano12101746.
Graphite/graphene intercalation compounds with good and improving electrical transport properties, optical properties, magnetic properties and even superconductivity are widely used in battery, capacitors and so on. Computational simulation helps with predicting important properties and exploring unknown functions, while it is restricted by limited computing resources and insufficient precision. Here, we present a cost-effective study on graphite/graphene intercalation compounds properties with sufficient precision. The calculation of electronic collective excitations in AA-stacking graphite based on the tight-binding model within the random phase approximation framework agrees quite well with previous experimental and calculation work, such as effects of doping level, interlayer distance, and interlayer hopping on 2D π plasmon and 3D intraband plasmon modes. This cost-effective simulation method can be extended to other intercalation compounds with unlimited intercalation species.
具有良好且不断改善的电学输运性质、光学性质、磁性质甚至超导性的石墨/石墨烯插层化合物被广泛应用于电池、电容器等领域。计算模拟有助于预测重要性质并探索未知功能,然而它受到有限计算资源和精度不足的限制。在此,我们以足够的精度对石墨/石墨烯插层化合物的性质进行了具有成本效益的研究。基于随机相位近似框架内的紧束缚模型对AA堆叠石墨中电子集体激发的计算,与先前的实验和计算工作相当吻合,例如掺杂水平、层间距离和层间跳跃对二维π等离子体激元和三维带内等离子体激元模式的影响。这种具有成本效益的模拟方法可以扩展到具有无限插层物种的其他插层化合物。