Sethi Gurjyot, Zhou Yinong, Zhu Linghan, Yang Li, Liu Feng
Department of Materials Science and Engineering, University of Utah, Salt Lake City, Utah 84112, USA.
Department of Physics, Washington University in St. Louis, St. Louis, Missouri 63130, USA.
Phys Rev Lett. 2021 May 14;126(19):196403. doi: 10.1103/PhysRevLett.126.196403.
The excitonic insulator (EI) state is a strongly correlated many-body ground state, arising from an instability in the band structure toward exciton formation. We show that the flat valence and conduction bands of a semiconducting diatomic Kagome lattice, as exemplified in a superatomic graphene lattice, can possibly conspire to enable an interesting triplet EI state, based on density-functional theory calculations combined with many-body GW and Bethe-Salpeter equation. Our results indicate that massive carriers in flat bands with highly localized electron and hole wave functions significantly reduce the screening and enhance the exchange interaction, leading to an unusually large triplet exciton binding energy (∼1.1 eV) exceeding the GW band gap by ∼0.2 eV and a large singlet-triplet splitting of ∼0.4 eV. Our findings enrich once again the intriguing physics of flat bands and extend the scope of EI materials.
激子绝缘体(EI)态是一种强关联多体基态,源于能带结构向激子形成的不稳定性。我们基于密度泛函理论计算结合多体GW和贝叶斯 - 萨尔皮特方程表明,以超原子石墨烯晶格为例的半导体双原子 Kagome 晶格的平带价带和导带,可能共同促成一种有趣的三重态 EI 态。我们的结果表明,具有高度局域化电子和空穴波函数的平带中的大质量载流子显著降低了屏蔽并增强了交换相互作用,导致异常大的三重态激子结合能(约1.1 eV),超过GW带隙约0.2 eV,以及约0.4 eV的大单重态 - 三重态分裂。我们的发现再次丰富了平带的有趣物理性质,并扩展了EI材料的范围。