Zhang Cen, Marvinney Claire Elizabeth, Xu Hai Yang, Liu Wei Zhen, Wang Chun Liang, Zhang Li Xia, Wang Jian Nong, Ma Jian Gang, Liu Yi Chun
Centre for Advanced Optoelectronic Functional Materials Research and Key Laboratory for UV Light-Emitting Materials and Technology of Ministry of Education, Northeast Normal University, Changchun 130024, China.
Nanoscale. 2015 Jan 21;7(3):1073-80. doi: 10.1039/c4nr04966g.
Localized surface plasmon (LSP) enhanced waveguide-type ultraviolet light-emitting diodes (LEDs) were fabricated by sputtering Ag nanoparticles (Ag-NPs) onto ZnO/MgZnO core/shell nanorod array (CS-NRA)/p-GaN heterostructures. A ∼9-fold enhancement of ZnO ultraviolet electroluminescence (EL) was demonstrated by the Ag-NPs decorated LED compared with the device without Ag-NPs. Angle-dependent EL measurements, as well as finite-difference time-domain simulations of the EL intensity spatial distribution, confirmed the waveguide-type EL transmission mode along the NR's axial direction. The increased spontaneous emission rate observed in time-resolved spectroscopy suggested that the ZnO EL enhancement was attributed to LSP-exciton/polariton coupling. However, a direct coupling is very difficult to achieve between Ag-LSPs and electron-hole pairs in the active region due to their "remote" separation. Thereby, two possible models involving the dynamic process of interactions among excitons, photons, and LSPs, were established to understand the selective enhancement of ZnO EL.
通过将银纳米颗粒(Ag-NPs)溅射在ZnO/MgZnO核壳纳米棒阵列(CS-NRA)/p-GaN异质结构上,制备了局域表面等离子体(LSP)增强的波导型紫外发光二极管(LED)。与未装饰Ag-NPs的器件相比,装饰有Ag-NPs的LED的ZnO紫外电致发光(EL)增强了约9倍。角度相关的EL测量以及EL强度空间分布的时域有限差分模拟,证实了沿纳米棒轴向的波导型EL传输模式。在时间分辨光谱中观察到的自发发射率增加表明,ZnO EL增强归因于LSP-激子/极化激元耦合。然而,由于Ag-LSP与有源区中的电子-空穴对“远程”分离,很难实现它们之间的直接耦合。因此,建立了两个涉及激子、光子和LSP之间相互作用动态过程的可能模型,以理解ZnO EL的选择性增强。