采用数值分析方法进行模拟分析In Ga N/Ga N混合多量子阱中移去p-Al Ga N电子阻挡层对Ga N基双蓝光波长发光二极管(LED)性能的影响。结果发现,与传统的具有p-Al Ga N电子阻挡层的双蓝光波长LED相比,移去电子阻挡层能有效地改善电子和空...采用数值分析方法进行模拟分析In Ga N/Ga N混合多量子阱中移去p-Al Ga N电子阻挡层对Ga N基双蓝光波长发光二极管(LED)性能的影响。结果发现,与传统的具有p-Al Ga N电子阻挡层的双蓝光波长LED相比,移去电子阻挡层能有效地改善电子和空穴在混合多量子阱活性层中的分布均匀性,实现电子空穴在各个量子阱中的均衡辐射。在小电流驱动时,移去电子阻挡层器件的发光功率要明显优于具有电子阻挡层的器件;而在大电流驱动时,电子阻挡层能有效地减少电子溢流,改善器件的发光效率。展开更多
A strain-compensated InGaN quantum well(QW) active region employing a tensile AlGaN barrier is analyzed.Its spectral stability and efficiency droop for a dual-blue light-emitting diode(LED) are improved compared w...A strain-compensated InGaN quantum well(QW) active region employing a tensile AlGaN barrier is analyzed.Its spectral stability and efficiency droop for a dual-blue light-emitting diode(LED) are improved compared with those of the conventional InGaN/GaN QW dual-blue LEDs based on a stacking structure of two In0.18Ga0.82N/GaN QWs and two In0.12Ga0.88N/GaN QWs on the same sapphire substrate.It is found that the optimal performance is achieved when the Al composition of the strain-compensated AlGaN layer is 0.12 in blue QW and 0.21 in blue-violet QW.The improvement performance can be attributed to the strain-compensated InGaN-AlGaN/GaN QW,which can provide a better carrier confinement and effectively reduce leakage current.展开更多
文摘采用数值分析方法进行模拟分析In Ga N/Ga N混合多量子阱中移去p-Al Ga N电子阻挡层对Ga N基双蓝光波长发光二极管(LED)性能的影响。结果发现,与传统的具有p-Al Ga N电子阻挡层的双蓝光波长LED相比,移去电子阻挡层能有效地改善电子和空穴在混合多量子阱活性层中的分布均匀性,实现电子空穴在各个量子阱中的均衡辐射。在小电流驱动时,移去电子阻挡层器件的发光功率要明显优于具有电子阻挡层的器件;而在大电流驱动时,电子阻挡层能有效地减少电子溢流,改善器件的发光效率。
基金Project supported by the National Natural Science Foundation of China (Grant No. U1174001)the Ministry of Education Scientific Research Foundation for Returned Scholars,China (Grant No. 20091001)+1 种基金the Scientific and Technological Plan of Guangzhou City,China (Grant No. 2010U1-D00131)the Natural Science Foundation of Guangdong Province,China (Grant No. S2011010003400)
文摘A strain-compensated InGaN quantum well(QW) active region employing a tensile AlGaN barrier is analyzed.Its spectral stability and efficiency droop for a dual-blue light-emitting diode(LED) are improved compared with those of the conventional InGaN/GaN QW dual-blue LEDs based on a stacking structure of two In0.18Ga0.82N/GaN QWs and two In0.12Ga0.88N/GaN QWs on the same sapphire substrate.It is found that the optimal performance is achieved when the Al composition of the strain-compensated AlGaN layer is 0.12 in blue QW and 0.21 in blue-violet QW.The improvement performance can be attributed to the strain-compensated InGaN-AlGaN/GaN QW,which can provide a better carrier confinement and effectively reduce leakage current.