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首页> 外文期刊>Journal of the Optical Society of America, B. Optical Physics >Nonlinear energy transfer in quantum dot and metallic nanorod nanocomposites
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Nonlinear energy transfer in quantum dot and metallic nanorod nanocomposites

机译:量子点和金属纳米棒纳米复合材料中的非线性能量转移

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We have investigated the nonlinear energy transfer in a quantum dot (QD) and metallic nanorod (MNR) nanocomposite. An intense probe laser field is applied to monitor two-photon energy transfer from the QD to the MNR and a control laser field is applied to control the energy transfer rate. Induced dipoles are created in the QD and MNR and these dipoles are interacting with each other. Surface plasmon resonances (SPRs) are also created in the MNR due to a coupling of charge fluctuations and external laser fields. Therefore, there is a dipole-dipole interaction between excitons in the QD and SPRs in the MNR. Due to this interaction, the two-photon energy is transferred from the QD to the MNR. Using the density matrix method, the energy transfer rate between the components of the system is evaluated. It is found that the energy transfer rate has one peak due to the transfer of the two-photon energy from the QD to the MNR when the control field is absent. When the control field is applied, this peak disappears. This means no energy transfer between two components of the nanosystems. However, two new peaks appear in the energy transfer rate at two different energies. It is also found that by varying the intensity of the probe field, one can also control the energy transfer from the QD to the MNR. These are interesting findings of the paper and they can be used to fabricate nanosensors, nanoswitches, and energy transfer devices. (C) 2015 Optical Society of America
机译:我们已经研究了量子点(QD)和金属纳米棒(MNR)纳米复合材料中的非线性能量转移。施加强探测激光场以监视从QD到MNR的双光子能量传递,并施加控制激光场以控制能量传递速率。在QD和MNR中会产生感应偶极子,并且这些偶极子会相互影响。由于电荷波动和外部激光场的耦合,在MNR中也会产生表面等离振子共振(SPR)。因此,QD中的激子与MNR中的SPR之间存在偶极-偶极相互作用。由于这种相互作用,双光子能量从QD传递到MNR。使用密度矩阵方法,可以评估系统各组件之间的能量传输速率。发现当不存在控制场时,由于两光子能量从QD传递到MNR,能量传递速率具有一个峰值。当应用控制字段时,此峰值消失。这意味着在纳米系统的两个组件之间没有能量转移。但是,在两种不同能量下的能量传输速率中出现了两个新的峰值。还发现,通过改变探测场的强度,还可以控制从量子点到MNR的能量转移。这些是论文中有趣的发现,可用于制造纳米传感器,纳米开关和能量传输设备。 (C)2015年美国眼镜学会

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