4.8 Article

High-Performance Deep Red Colloidal Quantum Well Light-Emitting Diodes Enabled by the Understanding of Charge Dynamics

Journal

ACS NANO
Volume 16, Issue 7, Pages 10840-10851

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acsnano.2c02967

Keywords

colloidal quantum well; light-emitting diode; charge balance; efficiency; active matrix

Funding

  1. National Natural Science Foundation of China
  2. Science and Technology Program of Guangdong Province
  3. Innovation and Technology Fund [62104265, 61922090, 9380088]
  4. CityU fund [U20A20340]
  5. National Key Research and Development Program of China [2021A0505110009]
  6. Guangdong Innovative and Entrepreneurial Research Team Program [GHP/006/20GD]
  7. Guang-dong Basic and Applied Basic Research Foundation for Distinguished Young Scholar [2020YFB0408100]
  8. Science and Technology Program of Guangzhou, China [2016ZT06C412]
  9. Agency for Science, Technology and Research (A*STAR) MTC program (Singapore) [2021B1515020028]
  10. Ministry of Education (Singapore) [201904010147]
  11. TUBITAK [M21J9b0085]
  12. TUBA [MOE-RG62/ 20]
  13. [115F297]
  14. [117E713]
  15. [119N343]
  16. [121N395]
  17. [20AG001]

Ask authors/readers for more resources

This study reports high-efficiency, ultra-low-efficiency roll-off, high luminance, and extremely saturated deep red CQW-LEDs. By introducing an efficient electron transport layer, the charge dynamics are improved, resulting in balanced charge injection, reduced nonradiative channels, and smooth films. The device achieves a record external quantum efficiency for 2D nanocrystal LEDs with deep red emissions and exceptional color purity.
Colloidal quantum wells (CQWs) have emerged as a promising family of two-dimensional (2D) optoelectronic materials with outstanding properties, including ultranarrow luminescence emission, nearly unity quantum yield, and large extinction coefficient. However, the performance of CQWs-based light-emitting diodes (CQW-LEDs) is far from satisfactory, particularly for deep red emissions (>= 660 nm). Herein, high efficiency, ultra-low-efficiency roll-off, high luminance, and extremely saturated deep red CQW-LEDs are reported. A key feature for the high performance is the understanding of charge dynamics achieved by introducing an efficient electron transport layer, ZnMgO, which enables balanced charge injection, reduced nonradiative channels, and smooth films. The CQW-LEDs based on (CdSe/CdS)@(CdS/CdZnS) ((core/crown)@(colloidal atomic layer deposition shell/hot injection shell)) show an external quantum efficiency of 9.89%, which is a record value for 2D nanocrystal LEDs with deep red emissions. The device also exhibits an ultra-low-efficiency roll-off and a high luminance of 3853 cd m(-2). Additionally, an exceptional color purity with the CIE coordinates of (0.719, 0.278) is obtained, indicating that the color gamut covers 102% of the International Telecommunication Union Recommendation BT 2020 (Rec. 2020) standard in the CIE 1931 color space, which is the best for CQW-LEDs. Furthermore, an active-matrix CQW-LED pixel circuit is demonstrated. The findings imply that the understanding of charge dynamics not only enables high-performance CQW-LEDs and can be further applied to other kinds of nanocrystal LEDs but also is beneficial to the development of CQW-LEDs-based display technology and related integrated optoelectronics.

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