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Carrier dynamics in Landau-quantized graphene featuring strong Auger scattering

机译:具有强俄歇散射的Landau量化石墨烯的载流子动力学

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摘要

The energy spectrum of common two-dimensional electron gases consists of a harmonic (that is, equidistant) ladder of Landau levels, thus preventing the possibility of optically addressing individual transitions. In graphene, however, owing to its non-harmonic spectrum, individual levels can be addressed selectively. Here, we report a time-resolved experiment directly pumping discrete Landau levels in graphene. Energetically degenerate Landau-level transitions from n = -1 to n = 0 and from n = 0 to n = 1 are distinguished by applying circularly polarized THz light. An analysis based on a microscopic theory shows that the zeroth Landau level is actually depleted by strong Auger scattering, even though it is optically pumped at the same time. The surprisingly strong electron-electron interaction responsible for this effect is directly evidenced through a sign reversal of the pump-probe signal.
机译:常见的二维电子气的能谱由Landau能级的谐波(即等距)阶梯组成,因此避免了光学解决单个跃迁的可能性。但是,在石墨烯中,由于其非谐波频谱,可以有选择地处理各个水平。在这里,我们报告了一个时间分辨的实验,该实验直接在石墨烯中泵送了离散的Landau水平。通过施加圆偏振太赫兹光,可以区分从n = -1到n = 0以及从n = 0到n = 1的能量简并的Landau能级跃迁。基于微观理论的分析表明,即使同时进行了光泵浦,第零朗道能级实际上也被强俄歇散射所耗尽。通过泵浦探针信号的符号反转可以直接证明造成这种效应的惊人的强大的电子-电子相互作用。

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