论文标题
手性纳米线中的等离子体横向偶极矩
Plasmonic Transverse Dipole Moment in Chiral Fermion Nanowires
论文作者
论文摘要
等离子是带有费米表面的材料的基本量子激发。在两个维度上,它们可能具有静态偶极矩,该偶极力矩横向其动量,而量子几何是量子几何的,即量子几何偶极子(QGD)。我们表明,对于纳米线几何形状中限制的此类材料也实现了这种特性。为了关注无间隙,内带等离子体的激发,我们计算了各种情况的模式的横向偶极矩Dx。我们发现,即使在二维频谱中没有固有间隙的情况下,单手性fermions通常寄托了非散布DX,相应的二维QGD消失了。在非常宽的电线的极限中,最高速度等离子体模式的横向偶极矩匹配二维QGD。具有时间反转对称的多谷化系统的等离子体具有消失的横向偶极力矩,但可以通过破坏山谷对称性(例如通过磁场)来携带非变化值。从原则上讲,纳米线等离子的非呈横向偶极矩的存在提供了通过应用静态横向电场连续控制其能量和速度的可能性。
Plasmons are elementary quantum excitations of conducting materials with Fermi surfaces. In two dimensions they may carry a static dipole moment that is transverse to their momentum which is quantum geometric in nature, the quantum geometric dipole (QGD). We show that this property is also realized for such materials confined in nanowire geometries. Focusing on the gapless, intra-subband plasmon excitations, we compute the transverse dipole moment Dx of the modes for a variety of situations. We find that single chiral fermions generically host non-vanishing Dx, even when there is no intrinsic gap in the two-dimensional spectrum, for which the corresponding two-dimensional QGD vanishes. In the limit of very wide wires, the transverse dipole moment of the highest velocity plasmon mode matches onto the two-dimensional QGD. Plasmons of multi-valley systems that are time-reversal symmetric have vanishing transverse dipole moment, but can be made to carry non-vanishing values by breaking the valley symmetry, for example via magnetic field. The presence of a non-vanishing transverse dipole moment for nanowire plasmons in principle offers the possibility of continuously controlling their energies and velocities by the application of a static transverse electric field.