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Anomalous Temperature Dependence of Photoluminescence Caused by Non-Equilibrium Distributed Carriers in InGaN/(In)GaN Multiple Quantum Wells

Yuhao Ben, Feng Liang, Degang Zhao, Xiaowei Wang, Jing Yang, Zongshun Liu, Ping Chen

2021Nanomaterials17 citationsDOIOpen Access PDF

Abstract

An increase of integrated photoluminescence (PL) intensity has been observed in a GaN-based multiple quantum wells (MQWs) sample. The integrated intensity of TDPL spectra forms an anomalous variation: it decreases from 30 to 100 K, then increases abnormally from 100 to 140 K and decreases again when temperature is beyond 140 K. The increased intensity is attributed to the electrons and holes whose distribution are spatial non-equilibrium distributed participated in the radiative recombination process and the quantum barrier layers are demonstrated to be the source of non-equilibrium distributed carriers. The temperature dependence of this kind of spatial non-equilibrium carriers' dynamics is very different from that of equilibrium carriers, resulting in the increased emission efficiency which only occurs from 100 to 140 K. Moreover, the luminescence efficiency of MQWs with non-equilibrium carriers is much higher than that without non-equilibrium carriers, indicating the high luminescence efficiency of GaN-based LEDs may be caused by the non-equilibrium distributed carriers. Furthermore, a comparison analysis of MQWs sample with and without hydrogen treatment further demonstrates that the better quantum well is one of the key factors of this anomalous phenomenon.

Topics & Concepts

PhotoluminescenceQuantum wellLuminescenceMaterials scienceQuantum efficiencySpontaneous emissionThermodynamic equilibriumOptoelectronicsIntensity (physics)ElectronDynamic equilibriumCondensed matter physicsPhysicsOpticsThermodynamicsQuantum mechanicsLaserGaN-based semiconductor devices and materialsGa2O3 and related materialsZnO doping and properties
Anomalous Temperature Dependence of Photoluminescence Caused by Non-Equilibrium Distributed Carriers in InGaN/(In)GaN Multiple Quantum Wells | Litcius