论文标题
在有热晶格振动的情况下,连贯的电荷载体动力学
Coherent charge carrier dynamics in the presence of thermal lattice vibrations
论文作者
论文摘要
我们开发了晶格振动的连贯状态表示,以描述它们与电荷载体的相互作用。与量子光学的直接类似,相干状态表示自然而然地从量化的晶格振动(声子)导致了准经典场极限,即变形电位。对于电子而言,变形场是丘陵和山谷的海洋,如``真实'',如任何外部场,以声速变形和传播,并随温度而大小生长。在这种无序的潜在景观中,电荷载体动力学被非扰动处理,从而保留了单碰撞事件的连贯性。我们显示,连贯的状态图片与扰动理论中的常规Fock状态图片完全吻合。此外,它通过揭示传统理论无法解释的方面超越:即使在高温下通过电荷载体相干效应在高温下进行瞬态定位,以及由于自我产生的疾病(变形)潜力而导致状态密度的带尾。晶格振动的连贯状态范式提供了工具,用于探测凝聚态物理学中重要问题的工具,如量子光学元件中。
We develop the coherent state representation of lattice vibrations to describe their interactions with charge carriers. In direct analogy to quantum optics, the coherent state representation leads from quantized lattice vibrations (phonons) naturally to a quasiclassical field limit, i.e., the deformation potential. To an electron, the deformation field is a sea of hills and valleys, as ``real'' as any external field, morphing and propagating at the sound speed, and growing in magnitude with temperature. In this disordered potential landscape, the charge carrier dynamics is treated nonperturbatively, preserving their coherence beyond single collision events. We show the coherent state picture agrees exactly with the conventional Fock state picture in perturbation theory. Furthermore, it goes beyond by revealing aspects that the conventional theory could not explain: transient localization even at high temperatures by charge carrier coherence effects, and band tails in the density of states due to the self-generated disorder (deformation) potential in a pure crystal. The coherent state paradigm of lattice vibrations supplies tools for probing important questions in condensed matter physics as in quantum optics.