“…QD-OLEDs have all of the advantages of OLEDs, such as small thickness due to self-emission, high brightness, high contrast ratios, and high refresh rates, as well as those of QDs, with excellent color expression. − Thus, far, most studies in the field of QD CCLs have focused on improving the QD synthesis method to enhance the absorption and emission properties of QDs, formulating QD CCL resins, and fabricating QD CCLs. − In particular, to enhance the color conversion efficiency, research has been conducted to increase QD concentration and improve the thickness of QD CCLs. Another approach to increase the color conversion efficiency is to introduce scattering particles, which are considered essential for QD CCLs. − Scattering particles can improve the extraction of the converted color light by increasing the optical path of blue light, resulting in improved absorption of QDs, and finally, enhancing the emission of QDs. Materials used as scattering particles, such as titanium dioxide (TiO 2 ), silicon dioxide, barium titanium oxide, tin oxide, and zinc oxide (ZnO), should have wide band gaps and should not absorb the OLED and QD light.…”