CHEN Xiao-hui, ZHAO Jia-long. Improvement of Performance for CdSe Quantum Dot LEDs by Using An Inverted Device Structure and Localized Surface Plasmon Resonance[J]. Chinese Journal of Luminescence, 2012,33(12): 1324-1328
CHEN Xiao-hui, ZHAO Jia-long. Improvement of Performance for CdSe Quantum Dot LEDs by Using An Inverted Device Structure and Localized Surface Plasmon Resonance[J]. Chinese Journal of Luminescence, 2012,33(12): 1324-1328 DOI: 10.3788/fgxb20123312.1324.
Improvement of Performance for CdSe Quantum Dot LEDs by Using An Inverted Device Structure and Localized Surface Plasmon Resonance
The improvement of the performance for CdSe quantum dot light emitting diodes (QD-LEDs) was studied by using the inverted device structure and localized surface plasmon resonant (LSPR) coupling of Au nanoparticles with the QDs. We fabricated inverted QD-LEDs with TiO
2
as the electron injection/transport layer. The current density-voltage characteristics of electron-only device were studied. The electron-injection current from the top Al electrode with the forward-bias voltage (Al was used as the cathode) was symmetrical with that of the bottom ITO electrode with reverse-bias voltage (ITO was used as the cathode)
indicating the electron injection from ITO to TiO
2
is facilitated like the case from Al cathode. It was noticed that the efficiency of QD-LEDs with Au nanoparticles was enhanced while the drop rate of the efficiency was clearly reduced with increasing the current density. A significant enhancement of 42% for current efficiency of the LEDs was achieved under high current density of 200 mA/cm
2
.
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