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Very slow cooling dynamics of photoexcited carriers in graphene observed by optical-pump terahertz-probe spectroscopy

机译:通过光泵太赫兹-探针光谱观察到石墨烯中光激发载流子的冷却动力学非常缓慢

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Using optical-pump terahertz-probe spectroscopy, we study the relaxation dynamics of photoexcited carriers in graphene at different substrate temperatures. We find that at lower temperatures the tail of the relaxation transients measured by the differential probe transmission become slower, extending beyond several hundred picoseconds below 50 K. We interpret the observed relaxation transients as resulting from the cooling of the photoexcited carriers via phonon emission. The slow cooling of the photoexcited carriers at low temperatures is attributed to the bulk of the electron and hole energy distributions moving close enough to the Dirac point that both intraband and interband scattering of carriers via optical phonon emission become inefficient for removing heat from the carriers. Our model, which includes intraband carrier scattering and interband carrier recombination and generation, agrees very well with the experimental observations.
机译:使用光泵太赫兹-探针光谱,我们研究了在不同衬底温度下石墨烯中光激发载流子的弛豫动力学。我们发现,在较低的温度下,通过差分探针传输测量的弛豫瞬变的尾部变慢,在50 K以下延伸超过数百皮秒。我们将观察到的弛豫瞬变解释为通过光子发射通过光激发载流子的冷却而产生的。光激发载流子在低温下的缓慢冷却归因于大量电子和空穴能量分布移动到足够接近狄拉克点的程度,以至于通过光子的发射,带内和带间散射都无法有效地去除载流子的热量。我们的模型,包括带内载波散射和带间载波重组与生成,与实验观察非常吻合。

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