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Relativistic motion of an Airy wave packet in a lattice potential

机译:晶格潜力中通气波包的相对论运动

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We study the dynamics of an Airy wave packet moving in a one-dimensional lattice potential. In contrast to the usual case of propagation in a continuum, for which such a wave packet experiences a uniform acceleration, the lattice bounds its velocity, and so the acceleration cannot continue indefinitely. Instead, we show that the wave packet's motion is described by relativistic equations of motion, which surprisingly arise naturally from evolution under the standard nonrelativistic Schr?dinger equation. The presence of the lattice potential allows the wave packet's motion to be controlled by means of Floquet engineering. In particular, in the deep relativistic limit when the wave packet's motion is photonlike, this form of control allows it to mimic both standard and negative refraction. Airy wave packets held in lattice potentials can thus be used as powerful and flexible simulators of relativistic quantum systems.
机译:我们研究了一维晶格潜力的通风波包的动态。 与连续uum中的通常的传播情况相比,这样的波分组经历均匀加速度,晶格界限为其速度,因此加速不能无限期地继续。 相反,我们表明波包的运动是通过相对论的运动方程来描述的,这令人惊讶地从标准的非椭圆体系中自然出现在标准的非筛选中的进化。 晶格潜力的存在允许通过FLOQUET工程来控制波包的运动。 特别地,在波包的运动是光子的深度相对论的极限中,这种控制形式允许它模仿标准和负折射。 因此,保持在晶格电位的通风波包可用作相对论量子系统的强大和灵活的模拟器。

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