Collective excitations and flat-band plasmon in twisted bilayer graphene near the magic angle

Xueheng Kuang, Z. Zhan, S. Yuan
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引用次数: 9

Abstract

Twisted bilayer graphene with tiny rotation angles have drawn significant attention due to the observation of the unconventional superconducting and correlated insulating behaviors. In this paper, we employ a full tight-binding model to investigate collective excitations in twisted bilayer graphene near magic angle. The polarization function is obtained from the tight-binding propagation method without diagonalization of the Hamiltonian matrix. With the atomic relaxation considered in the simulation, damped and undamped interband plasmon modes are discovered near magic angle under both room temperature and superconductivity transition temperature. In particular, an undamped plasmon mode in narrow bands can be directly probed in magic angle twisted bilayer graphene at superconductivity transition temperature. The undamped plasmon mode is tunable with angles and gradually fades away with both temperature and chemical potential. In practice, the flat bands in twisted bilayer graphene can be detected by exploring the collective plasmons from the measured energy loss function.
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在魔角附近扭曲双层石墨烯中的集体激发和平带等离子体
具有微小旋转角度的扭曲双层石墨烯由于观察到非常规超导和相关绝缘行为而引起了人们的广泛关注。本文采用全紧密结合模型研究了双分子层石墨烯在魔角附近的集体激发。偏振函数由密结传播法得到,无需对角化哈密顿矩阵。考虑了原子弛豫的影响,在室温和超导转变温度下,在魔角附近发现了带间等离激元的阻尼模式和无阻尼模式。特别是,在超导转变温度下,在魔角扭曲双层石墨烯中可以直接探测到窄带的无阻尼等离子体模式。无阻尼等离子体模式随角度可调,并随温度和化学势逐渐消失。在实际应用中,可以通过从测量的能量损失函数中探索集体等离子体来探测扭曲双层石墨烯中的平带。
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