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Enhanced optical limiting and carrier dynamics in metal oxide-hydrogen exfoliated graphene hybrids

机译:金属氧化物-氢剥落石墨烯杂化物中增强的光学限制和载流子动力学

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Hydrogen exfoliated graphene (HEG) is an interesting class of few-layer graphene, which is synthesized via hydrogen induced simultaneous exfoliation-reduction of graphite oxide. HEG exhibits strong optical limiting (OL) due to defect states arising from a large number of structural defects as well as oxygen functionalities present on its surface. Recently, we have shown that OL in HEG can be improved by simple acid functionalization, as it results in an increased number of defects. In the present study, we demonstrate that the OL performance of functionalized HEG (f-HEG) can be further improved, in both the short-pulse (nanosecond) and ultrafast (femtosecond) laser excitation regimes, using hybrids of f-HEG with transition metal oxide nanoparticles (NPs) such as CuO. The enhancement in the OL efficiency of the hybrid arises from strong nonlinear absorption in CuO NPs, which is determined mostly by interband and intraband transitions. The presence of defect states in the samples is confirmed using ultrafast pump-probe measurements, which reveal a delayed carrier relaxation due to carrier trapping by these states. Furthermore, we show that the occurrence of induced thermal scattering is minimal in these water dispersed systems, such that OL occurs predominantly due to nonlinear absorption.
机译:氢剥落石墨烯(HEG)是一类有趣的几层石墨烯,它是通过氢诱导同时剥落氧化石墨而合成的。由于大量结构缺陷以及表面上存在的氧官能团引起的缺陷状态,HEG表现出强大的光学极限(OL)。最近,我们已经表明,通过简单的酸官能化可以改善HEG中的OL,因为它导致缺陷数量增加。在本研究中,我们证明在短脉冲(纳秒)和超快(飞秒)激光激发方案中,使用f-HEG与跃迁的混合体,可以进一步提高功能化HEG(f-HEG)的OL性能。金属氧化物纳米粒子(NPs),例如CuO。杂化剂的OL效率的提高归因于CuO NP中强烈的非线性吸收,这主要由带间和带内跃迁决定。使用超快泵浦探针测量可确认样品中存在缺陷状态,这些测量结果显示由于这些状态捕获载流子而导致了载流子弛豫的延迟。此外,我们表明,在这些水分散的系统中,引起的热散射的发生极少,因此OL主要是由于非线性吸收而发生的。

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