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Picosecond pulse generation with 34W peak power using a monolithic quantum-dot tapered mode-locked laser and tapered optical amplifier

机译:使用单片量子点锥形锁模激光器和锥形光放大器产生峰值功率为34W的皮秒脉冲

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Ultrafast high peak power near infrared laser systems are important in nonlinear biomedical imaging applications including two-photon excitation fluorescence (TPEF) or second harmonic generation (SHG) microscopy that are currently dominated by pulsed solid state lasers. The detected intensity in TPEF and SHG depends quad-ratically on the pulse peak power and linearly on the pulse width and repetition rate. Quantum-dot (QD) based semiconductor pulse sources have shown to generate ultrashort pulses and high peak power [1]. QD semiconductor optical amplifiers (SOA) are very suitable to increase the power of these ultrashort pulses due to their high gain saturation characteristics, broad gain bandwidth and fast gain recovery. Such combined systems are compact, efficient and robust thus being promising alternatives to solid state pulsed lasers. Recently, an external cavity laser and amplifier combination was reported exhibiting a pulse peak power of 30W and an average power of 208mW at a repetition rate of 648 MHz and a pulse width of 10.6 ps. This configuration has been successfully applied in TPEF [2].
机译:超快高峰值功率近红外激光系统在非线性生物医学成像应用中很重要,包括双光子激发荧光(TPEF)或二次谐波产生(SHG)显微镜,这些技术目前主要由脉冲固态激光器主导。 TPEF和SHG中检测到的强度与脉冲峰值功率成正比关系,与脉冲宽度和重复率成线性关系。已显示基于量子点(QD)的半导体脉冲源可产生超短脉冲和高峰值功率[1]。 QD半导体光放大器(SOA)具有高增益饱和特性,宽增益带宽和快速增益恢复特性,非常适合提高这些超短脉冲的功率。这样的组合系统紧凑,高效且坚固,因此是固态脉冲激光器的有前途的替代方案。最近,据报道,外腔激光器和放大器的组合在648 MHz的重复频率和10.6 ps的脉冲宽度下显示出30W的脉冲峰值功率和208mW的平均功率。此配置已成功应用于TPEF [2]。

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