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The Effect of Periodic Spatial Perturbations on the Emission Rates of Quantum Dots near Graphene Platforms

机译:周期性空间扰动对石墨烯平台附近量子点排放率的影响

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摘要

The quenching of fluorescence (FL) at the vicinity of conductive surfaces and, in particular, near a 2-D graphene layer has become an important biochemical sensing tool. The quenching is attributed to fast non-radiative energy transfer between a chromophore (here, a Quantum Dot, QD) and the lossy graphene layer. Increased emission rate is also observed when the QD is coupled to a resonator. Here, we combine the two effects in order to control the emission lifetime of the QD. In our case, the resonator was defined by an array of nano-holes in the oxide substrate underneath a graphene surface guide. At resonance, the surface mode of the emitted radiation is concentrated at the nano-holes. Thus, the radiation of QD at or near the holes is spatially correlated through the hole-array’s symmetry. We demonstrated an emission rate change by more than 50% as the sample was azimuthally rotated with respect to the polarization of the excitation laser. In addition to an electrical control, such control over the emission lifetime could be used to control Resonance Energy Transfer (RET) between two chromophores.
机译:在导电表面附近的荧光(FL)的猝灭,特别是在2-D石墨烯层附近已成为重要的生物化学传感工具。淬火归因于发色团(这里,量子点,QD)和有损石墨烯层之间的快速非辐射能量转移。当QD耦合到谐振器时,还观察到增加的发射率。在这里,我们结合了两种效果,以控制QD的发射寿命。在我们的情况下,谐振器由在石墨烯表面引导下的氧化物衬底中的纳米孔阵列限定。在共振时,发射辐射的表面模式集中在纳米孔处。因此,孔处或靠近孔附近的辐射通过空穴阵列的对称性地相关。当样品相对于激发激光器的偏振方向时,我们证明了排放率的变化超过50%。除了电控制之外,对发射寿命的这种控制可用于控制两个发色团之间的共振能量转移(RET)。

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