Key Lab for Special Functional Materials of Ministry of Education, Collaborative Innovation Center of Nano Functional Materials and Applications, Henan University, Kaifeng, 475004, People's Republic of China.
Nanoscale. 2018 Jun 21;10(24):11651-11656. doi: 10.1039/c8nr02082e.
Extracting light from quantum dot light emitting diodes (QLEDs) by applying optical-functional nanostructures inside and outside the devices is essential for their commercial application in illumination and displays. In this paper, we demonstrate the highly effective extraction of waveguided light from the active region of QLEDs by embedding internal grating patterns fabricated using a nanoimprint lithography technique. The grating couples out waveguide mode power into the substrate without changing the device's electrical properties, resulting in an increase in both the external quantum efficiency and luminous efficiency for a green QLED from 11.13% to 13.45%, and 29 010 cd m-2 to 44 150 cd m-2, respectively. The observed improvement can be ascribed to the elimination of the waveguide mode by the grating nanostructures introduced in the device. Furthermore, the finite-difference time-domain (FDTD) simulation also demonstrated that the power loss due to the waveguide mode was reversed. The results indicate that internal nano-scattering pattern structures are attractive for enhancing the out-coupling efficiency of QLEDs.
通过在器件内部和外部应用光学功能纳米结构从量子点发光二极管(QLED)中提取光对于它们在照明和显示中的商业应用至关重要。在本文中,我们通过嵌入使用纳米压印光刻技术制造的内部光栅图案,演示了从 QLED 的有源区高效提取波导光。光栅将波导模式功率耦合到衬底中,而不会改变器件的电特性,从而使绿光 QLED 的外量子效率和光效分别从 11.13%提高到 13.45%,从 29010 cd/m2 提高到 44150 cd/m2。观察到的改善可以归因于器件中引入的光栅纳米结构消除了波导模式。此外,有限差分时域(FDTD)模拟也表明,由于波导模式引起的功率损耗被反转。结果表明,内部纳米散射图案结构对于提高 QLED 的外耦合效率具有吸引力。