Excitation enhancement of hot electrons by ultrafast optical pumping in heavily p-doped graphene stacks

D. Qi, Yingying Zhu, Renhao Fan, R. Peng, Mu Wang
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Abstract

In this work, we intentionally explored the heavily p-doped graphene stacks by degenerate femtosecond pump-probe spectroscopy, and observed an excitation enhancement of hot electrons at weak pump fluence. Physically, both Auger processes and population inversion are suppressed in this system, yet it becomes possible for the conduction bands to be effectively evacuated within the pulse duration through the ultrafast cooling of hot electrons, which may lead to an enhanced excitation of hot electrons. This excitation enhancement can be further strengthened by multiple layer-stacking processes or a thermal annealing pretreatment. Furthermore, large modulation depth is achieved in graphene stacks with small variation of pump fluence. We suggest that this effect can have potential applications on harvesting energy from excited hot electrons, and may provide a unique way to achieve high-speed modulators, photodetectors, solar cells, and photocatalysts.
高掺磷石墨烯堆中超快光泵浦对热电子的激发增强
在这项工作中,我们有意利用简并飞秒泵浦探测光谱来探索高掺p的石墨烯堆,并观察到在弱泵浦流量下热电子的激发增强。在物理上,该系统抑制了俄歇过程和居群反转,但通过对热电子的超快冷却,可以在脉冲持续时间内有效地抽离导带,从而增强了热电子的激发。这种激发增强可以通过多层叠加工艺或热退火预处理进一步加强。此外,在泵浦流量变化较小的情况下,石墨烯堆叠可以实现较大的调制深度。我们认为这种效应在从激发的热电子中收集能量方面有潜在的应用,并可能为实现高速调制器、光电探测器、太阳能电池和光催化剂提供一种独特的方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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