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首页> 外文期刊>Optics Communications: A Journal Devoted to the Rapid Publication of Short Contributions in the Field of Optics and Interaction of Light with Matter >Carrier transport improvement in ZnO/MgZnO multiple-quantum-well ultraviolet light-emitting diodes by energy band modification on MgZnO barriers
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Carrier transport improvement in ZnO/MgZnO multiple-quantum-well ultraviolet light-emitting diodes by energy band modification on MgZnO barriers

机译:通过对MGZNO屏障的能带改性ZnO / MGZNO多量子孔紫外发光二极管的载体传输改进

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摘要

Ultraviolet (UV) light-emitting diodes (LEDs) based on zinc oxide (ZnO) materials have been the subject of many investigations because of their potential applications. In this study, ZnO/MgZnO multiple-quantum-well UV LEDs with graded-composition barriers were developed and numerically analyzed. The simulation results demonstrate that an optimized LED with a Mg composition graded from 24% to 2% in each triangular barrier exhibits the highest internal quantum efficiency (IQE) (88.0%) at 200 A/cm(2), showing a 31.3% increase compared with the conventional LED with square barriers. This enhancement is attributed to the modified energy band structures that improve the symmetry in carrier transportation and increase the radiative recombination rate in each ZnO quantum well, thus enhancing the IQE of the device. Additionally, the different band-offset ratios of the MgZnO/ZnO and InGaN/GaN heterojunctions, which lead to the different carrier transport and electroluminescence properties of the ZnO- and GaN-based LEDs, were discussed here, providing researchers new insights into device design of ZnO-based LEDs.
机译:基于氧化锌(ZnO)材料的紫外(UV)发光二极管(LED)是由于其潜在应用的许多研究的主题。在本研究中,开发和数值分析了具有分级组成屏障的ZnO / MGZNO多量子孔UV LED。模拟结果表明,在每个三角形屏障中的24%至2%中的Mg组合物的优化LED在200A / cm(2)时显示出最高的内部量子效率(IQE)(88.0%),显示31.3%与具有方形屏障的传统LED相比。这种增强归因于改善载体运输中的对称性的改进的能带结构,并增加了每个ZnO量子中的辐射复合速率,从而增强了装置的IQE。另外,所述的MgZnO /氧化锌和InGaN /氮化镓异质结,从而导致基于GaN的ZnO-和LED的不同载流子传输和电致发光特性的不同带偏移比,在这里所讨论的,为研究人员提供了新的见解的设备设计基于ZnO的LED。

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