Liu Jingran, Luo Chaobo, Lu Haolin, Huang Zhongkai, Long Guankui, Peng Xiangyang
Hunan Key Laboratory for Micro-Nano Energy Materials and Devices, School of Physics and Optoelectronics, Xiangtan University, Xiangtan 411105, China.
School of Materials Science and Engineering, National Institute for Advanced Materials, Renewable Energy Conversion and Storage Center (RECAST), Nankai University, Tianjin 300350, China.
Molecules. 2022 Jun 10;27(12):3740. doi: 10.3390/molecules27123740.
By performing first-principles calculations, we studied hexagonal-boron-nitride (hBN)-supported graphene, in which moiré structures are formed due to lattice mismatch or interlayer rotation. A series of graphene/hBN systems has been studied to reveal the evolution of properties with respect to different twisting angles (21.78°, 13.1°, 9.43°, 7.34°, 5.1°, and 3.48°). Although AA- and AB-stacked graphene/hBN are gapped at the Dirac point by about 50 meV, the energy gap of the moiré graphene/hBN, which is much more asymmetric, is only about several meV. Although the Dirac cone of graphene residing in the wide gap of hBN is not much affected, the calculated Fermi velocity is found to decrease with the increase in the moiré super lattice constant due to charge transfer. The periodic potential imposed by hBN modulated charge distributions in graphene, leading to the shift of graphene bands. In agreement with experiments, there are dips in the calculated density of states, which get closer and closer to the Fermi energy as the moiré lattice grows larger.
通过进行第一性原理计算,我们研究了六方氮化硼(hBN)支撑的石墨烯,其中由于晶格失配或层间旋转形成了莫尔条纹结构。我们研究了一系列石墨烯/hBN系统,以揭示其在不同扭转角度(21.78°、13.1°、9.43°、7.34°、5.1°和3.48°)下的性能演变。尽管AA堆叠和AB堆叠的石墨烯/hBN在狄拉克点处的能隙约为50毫电子伏特,但更为不对称的莫尔条纹石墨烯/hBN的能隙仅约为几毫电子伏特。尽管位于hBN宽带隙中的石墨烯狄拉克锥受到的影响不大,但由于电荷转移,计算得到的费米速度会随着莫尔超晶格常数的增加而降低。hBN施加的周期性势调制了石墨烯中的电荷分布,导致石墨烯能带发生移动。与实验结果一致,计算得到的态密度存在凹陷,随着莫尔晶格变大,这些凹陷越来越接近费米能量。