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Tailoring light-matter interaction in WS2-gold nanoparticles hybrid systems

机译:WS2-金纳米颗粒混合系统中的剪裁光物质相互作用

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Recently, considerable attention has been paid to tune the emission using hybrid systems composed of layered transition-metal dichalcogenides and metal nanoparticles (NPs) since metal NPs have the ability to enhance and localize the incident electromagnetic field. Furthermore, these hybrid systems show great interest from the standpoint of fundamental science as it constitutes an atomic scale prototype of charge-transfer complexes. Here, we realized WS2-gold (Au) NPs hybrids by chemically growing Au NPs at the edges of the mechanically exfoliated bilayer WS2. The Au NPs significantly increase the light-matter interaction which has been studied through Raman and photoluminescence (PL) spectroscopy. A substantial enhancement of the PL intensity in the WS2-Au composite concerning the pristine WS2 has been observed, and it increases as the number and size of the Au NPs on WS2 is increased. Geometry-dependent modification of plasmon resonance energy of Au NP alters the coupling strength between the emission pathways of WS2 and the plasmon which is manifested by a change in relative intensity between trion (X-) and exciton (X) emissions. We probe the mechanism of the PL intensity modulation through polarization-dependent measurements and simulation. We have demonstrated that, in WS2, the internal quantum efficiency increases and activation energy decreases due to coupling with Au NPs. Compared to pristine WS2, a faster change in optical band gap with temperature in WS2-Au may be due to enhancing electron-phonon interaction and lattice expansion in the latter. Our paper indicates the possibility to develop high performance transition-metal dichalcogenide-based photonic devices.
机译:最近,使用由层状过渡金属二甲基化物和金属纳米颗粒(NPS)组成的混合系统来调整发射的相当大的关注,因为金属NPS具有增强和定位入射电磁场的能力。此外,这些混合系统从基本科学的角度表现出极大的兴趣,因为它构成了电荷转移复合物的原子量级原型。在这里,我们通过在机械剥离双层WS2的边缘处化学生长Au nps来实现WS2-金(AU)NPS杂种。 Au NPS显着提高通过拉曼和光致发光(PL)光谱研究的光质相互作用。已经观察到关于原始WS2的WS2-AU复合材料中的PL强度的大大提高,随着WS2上的AU NP的数量和大小增加,它增加了。 Au np的等物体依赖性改性Au np的偏振能量改变了WS2的发射途径与等离子体之间的耦合强度,其表现为TRION(X-)和EXCICON(X)排放之间的相对强度的变化。我们通过偏振依赖性测量和仿真探测PL强度调制的机制。我们已经证明,在WS2中,由于与Au nps偶联,内部量子效率增加和激活能量降低。与原始WS2相比,WS2-AU中温度的光带间隙的更快变化可能是由于在后者中增强了电子 - 声子相互作用和晶格膨胀。我们的论文表明了开发高性能过渡金属二甲基化物的光子器件的可能性。

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