| Literature DB >> 31379086 |
Baiquan Liu1, Manoj Sharma1, Junhong Yu1, Sushant Shendre1, Chathuranga Hettiarachchi2, Ashma Sharma1, Aydan Yeltik3, Lin Wang4, Handong Sun4, Cuong Dang1,2, Hilmi Volkan Demir1,3.
Abstract
Copper-doped colloidal quantum wells (Cu-CQWs) are considered a new class of optoelectronic materials. To date, the electroluminescence (EL) property of Cu-CQWs has not been revealed. Additionally, it is desirable to achieve ultrapure green, tunable dual-emission and white light to satisfy the various requirement of display and lighting applications. Herein, light-emitting diodes (LEDs) based on colloidal Cu-CQWs are demonstrated. For the 0% Cu-doped concentration, the LED exhibits Commission Internationale de L'Eclairage 1931 coordinates of (0.103, 0.797) with a narrow EL full-wavelength at half-maximum of 12 nm. For the 0.5% Cu-doped concentration, a dual-emission LED is realized. Remarkably, the dual emission can be tuned by manipulating the device engineering. Furthermore, at a high doping concentration of 2.4%, a white LED based on CQWs is developed. With the management of doping concentrations, the color tuning (green, dual-emission to white) is shown. The findings not only show that LEDs with CQWs can exhibit polychromatic emission but also unlock a new direction to develop LEDs by exploiting 2D impurity-doped CQWs that can be further extended to the application of other impurities (e.g., Mn, Ag).Entities:
Keywords: colloidal quantum wells; dual emission; impurity doping; light-emitting diodes; nanoplatelets
Year: 2019 PMID: 31379086 DOI: 10.1002/smll.201901983
Source DB: PubMed Journal: Small ISSN: 1613-6810 Impact factor: 13.281