论文标题

螺旋钻重组在金属 - 触发器混合纳米结构中等离子体控制的光致发光动力学中的作用

Role of Auger Recombination in Plasmon Controlled Photoluminescence Kinetics in Metal-Semiconductor Hybrid Nanostructures

论文作者

Gurung, Sabina, Singh, Asha, Jayabalan, J.

论文摘要

半导体量子点(SQD)的光谱研究解决了非辐射载体损失问题,对于提高各种发光设备效率的提高至关重要。 SQD发射极的各种设计(如掺杂,形成核心壳和合金)已尝试抑制非辐射性重组。在本文中,我们表明,与金属纳米颗粒(MNP)形成具有局部表面等离子体共振的杂种与SQD的发射光谱重叠,可以减轻通过钻孔重组的非辐射载体损失。使用稳态和时间分辨的光致发光,已经表明,当这种混合体在没有令人兴奋的等离子体的情况下选择性地激发在带隙上方时,对快速衰减时间的贡献也会减少,以及对更长衰减时间的贡献的增加。当激发激发激发激发和等离子体时,观察到完全反向动力学。通过将MNP放置在SQD附近,对光致发光动力学的控制为设计非常适合发光设备的混合材料打开了一种新方法。

Spectroscopic studies of semiconductor quantum dots (SQDs) addressing the problem of non-radiative carrier losses is vital for the improvement in the efficiency of various light-emitting devices. Various designs of SQDs emitter like doping, forming core-shell and alloying has been attempted to suppress non-radiative recombination. In this article, we show that forming a hybrid with metal nanoparticles (MNP) having localized surface plasmon resonance overlapped with the emission spectrum of SQD, the non-radiative carrier loss via Auger recombination can be mitigated. Using steady-state and time-resolved photoluminescence, it has been shown that when such hybrid is selectively excited well above the bandgap without exciting plasmon, the contribution to fast decay time reduces along with an increase in contributions to longer decay times. A completely reverse kinetics is observed when exciton and plasmon are simultaneously excited. Such control of photoluminescence kinetics by placing MNP near SQD opens up a new method for designing hybrid materials that are well suited for light-emitting devices.

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