ACS Appl Mater Interfaces. 2018 May 9;10(18):15812-15819. doi: 10.1021/acsami.8b00940. Epub 2018 Apr 26.
Color-tunable light-emitting devices (LEDs) have a great impact on our daily life. Herein, LEDs with tunable electroluminescence (EL) color were achieved via introducing Ag nanowires surface plasmons into p-GaN/n-ZnO film heterostructures. By optimizing the surface coverage density of coated Ag nanowires, the EL color was changed continuously from yellow-green to blue-violet. Transient-state and temperature-variable fluorescence emission characterizations uncovered that the spontaneous emission rate and the internal quantum efficiency of the near-UV emission were increased as a consequence of the resonance coupling interaction between Ag nanowires surface plasmons and ZnO excitons. This effect induces the selective enhancement of the blue-violet EL component but suppresses the defect-related yellow-green emission, leading to the observed tunable EL color. The proposed strategy of introducing surface plasmons can be further applied to many other kinds of LEDs for their selective enhancement of EL intensity and effective adjustment of the emission color.
可调谐发光器件(LED)对我们的日常生活有重大影响。在此,通过将 Ag 纳米线表面等离激元引入 p-GaN/n-ZnO 薄膜异质结构,实现了可调谐电致发光(EL)颜色的 LED。通过优化涂覆 Ag 纳米线的表面覆盖率密度,EL 颜色连续从黄绿光变为蓝紫光。瞬态和温度变量荧光发射特性表明,由于 Ag 纳米线表面等离激元和 ZnO 激子之间的共振耦合相互作用,近紫外发射的自发发射率和内量子效率增加。这种效应导致选择性增强蓝紫光 EL 分量,但抑制与缺陷相关的黄绿光发射,从而观察到可调谐 EL 颜色。引入表面等离激元的这种策略可进一步应用于许多其他类型的 LED,以选择性地增强 EL 强度并有效调节发射颜色。