纳秒
微秒
激子
激光阈值
材料科学
光电子学
有机发光二极管
二极管
有机半导体
电压
激光器
纳米技术
光学
物理
波长
图层(电子)
量子力学
作者
Viqar Uddin Ahmad,Jan Sobuś,Mitchell Greenberg,Atul Shukla,Bronson Philippa,Almantas Pivrikas,George Vamvounis,Ronald D. White,Shih‐Chun Lo,Ebinazar B. Namdas
标识
DOI:10.1038/s41467-020-18094-4
摘要
Electrical pumping of organic semiconductor devices involves charge injection, transport, device on/off dynamics, exciton formation and annihilation processes. A comprehensive model analysing those entwined processes together is most helpful in determining the dominating loss pathways. In this paper, we report experimental and theoretical results of Super Yellow (Poly(p-phenylene vinylene) co-polymer) organic light emitting diodes operating at high current density under high voltage nanosecond pulses. We demonstrate complete exciton and charge carrier dynamics of devices, starting from charge injection to light emission, in a time scale spanning from the sub-ns to microsecond region, and compare results with optical pumping. The experimental data is accurately replicated by simulation, which provides a robust test platform for any organic materials. The universality of our model is successfully demonstrated by its application to three other laser active materials. The findings provide a tool to narrow the search for material and device designs for injection lasing.
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