论文标题
从高电流密度量子点LED的光学激发两波段放大的自发发射
Optically Excited Two-Band Amplified Spontaneous Emission from a High-Current-Density Quantum-Dot LED
论文作者
论文摘要
基于解决方案可供处理材料的激光二极管可以使许多技术受益,包括集成电子和光子学,电信和医学诊断。实施这些设备的有吸引力的系统是胶体半导体量子点(QD)。妨碍QD激光二极管(QLD)进展的主要挑战是光学增益活性多载体状态的快速非放射性螺旋蛋白衰变。最近,通过使用连续分级的QD(CG-QD)来解决此问题,其中螺旋钻重组被强烈抑制。这些结构的使用允许在多层LED样设备中使用电泵和光振兴的激光来证明光学增益。在这里,我们报告要实现朝着昆士兰州的下一个关键里程碑,这是通过功能齐全的高电流密度电致电设备的光学激发放大自发发射的证明。由于新颖的“紧凑” CG-QD和新的LED体系结构的出色光学增益特性,这一进展变得可能成为可能,该特性允许对其光学和电气性能进行协同优化。这项工作的结果强烈表明迈向功能性昆士兰州的最后一步的可行性,这是用电泵激光的演示。
Laser diodes based on solution-processable materials could benefit numerous technologies including integrated electronics and photonics, telecommunication, and medical diagnostics. An attractive system for implementing these devices is colloidal semiconductor quantum dots (QDs). The primary challenge that hampered progress towards a QD laser diode (QLD) has been fast nonradiative Auger decay of optical-gain-active multicarrier states. Recently, this problem has been resolved by employing continuously graded QDs (cg-QDs) wherein Auger recombination is strongly suppressed. The use of these structures allowed for demonstrations of optical gain with electrical pumping and optically-excited lasing in multilayered LED-like devices. Here we report on achieving the next critical milestone towards a QLD, which is the demonstration of optically excited amplified spontaneous emission from a fully functional high-current density electroluminescent device. This advance has become possible due to excellent optical gain properties of novel 'compact' cg-QDs and a new LED architecture, which allows for concerted optimization of its optical and electrical properties. The results of this work strongly suggest the feasibility of the final step towards a functional QLD, which is the demonstration of lasing with electrical pumping.