Quantitative Determination of Charge Accumulation and Recombination in Operational Quantum Dots Light Emitting Diodes via Time-Resolved Electroluminescence Spectroscopy

Hui Bao, Cuili Chen, Yongqi Cao, Shuai Chang*, Shuangpeng Wang, Haizheng Zhong*

*Corresponding author for this work

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Abstract

In this work, we report the quantitative determination of charge accumulation and recombination in an operated QLED using time-resolved electroluminescence (TREL) spectroscopy. As a supplement technique, time-resolved current (TRC) measurement was introduced and simulated using equivalent circuit model with a series resistance, a parallel resistance, and a capacitance. By modeling the key processes in a typical TREL spectra, the stages of delay, rising, and decay can be correlated to the charge accumulations, charge injection and recombination, and charge release and recombination, respectively. In particular, the rising stage can be described using a modified Langevin recombination model. The electroluminescence recombination rate can be derived by fitting the rising stage curves in the TREL spectra, providing an intrinsic parameter of the emissive materials. In all, this work provides a methodology to quantitatively determine the charge accumulation and recombination of an operational QLED device.

Original languageEnglish
Pages (from-to)1777-1783
Number of pages7
JournalJournal of Physical Chemistry Letters
Volume14
Issue number7
DOIs
Publication statusPublished - 23 Feb 2023

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Bao, H., Chen, C., Cao, Y., Chang, S., Wang, S., & Zhong, H. (2023). Quantitative Determination of Charge Accumulation and Recombination in Operational Quantum Dots Light Emitting Diodes via Time-Resolved Electroluminescence Spectroscopy. Journal of Physical Chemistry Letters, 14(7), 1777-1783. https://doi.org/10.1021/acs.jpclett.3c00070