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Quantum dot based ultrafast photoconductive antennae for efficient THz radiation

机译:基于量子点的超快光电导天线,可实现有效的太赫兹辐射

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摘要

Here we overview our work on quantum dot based THz photoconductive antennae, capable of being pumped at very high optical intensities of higher than 1W optical mean power, i.e. about 50 times higher than the conventional LT-GaAs based antennae. Apart from high thermal tolerance, defect-free GaAs crystal layers in an InAs:GaAs quantum dot structure allow high carrier mobility and ultrashort photocarrier lifetimes simultaneously. Thus, they combine the advantages and lacking the disadvantages of GaAs and LT-GaAs, which are the most popular materials so far, and thus can be used for both CW and pulsed THz generation. By changing quantum dot size, composition, density of dots and number of quantum dot layers, the optoelectronic properties of the overall structure can be set over a reasonable range - compact semiconductor pump lasers that operate at wavelengths in the region of 1.0 μm to 1.3 pm can be used. InAs:GaAs quantum dot-based antennae samples show no saturation in pulsed THz generation for all average pump powers up to 1W focussed into 30μm spot. Generated THz power is superlinearly proportional to laser pump power. The generated THz spectrum depends on antenna design and can cover from 150 GHz up to 1.5 THz.
机译:在这里,我们概述了基于量子点的THz光电导天线的工作,该天线能够以高于1W光学平均功率的非常高的光强度进行泵浦,即比传统的LT-GaAs天线高约50倍。除了具有高的耐热性外,InAs:GaAs量子点结构中的无缺陷GaAs晶体层还可以同时实现高载流子迁移率和超短光子寿命。因此,它们结合了迄今为止最受欢迎的材料GaAs和LT-GaAs的优点和缺点,因此可以用于连续波和脉冲THz生成。通过更改量子点的大小,组成,点的密度和量子点层的数量,可以在合理的范围内设置整个结构的光电特性-波长在1.0μm至1.3 pm范围内的紧凑型半导体泵浦激光器可以使用。 InAs:GaAs量子点天线样品在聚焦到30μm光斑的所有平均泵浦功率高达1W时,在脉冲THz产生中均未显示饱和。产生的太赫兹功率与激光泵浦功率成超线性比例关系。产生的THz频谱取决于天线设计,并且可以覆盖150 GHz至1.5 THz。

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