Hinkov Borislav, Hugi Andreas, Beck Mattias, Faist Jérôme
Opt Express. 2016 Feb 22;24(4):3294-312. doi: 10.1364/OE.24.003294.
We present the electrical and optical characterization and theoretical modeling of the transient behavior of regular 4.5-μm single-mode emitting distributed feedback (DFB) quantum cascade lasers (QCLs). Low residual capacitance together with a high-frequency optimized three-terminal coplanar waveguide configuration leads to modulation frequencies up to 23.5 GHz (optical) and 26.5 GHz (electrical), respectively. A maximum 3-dB cut-off value of 6.6 GHz in a microwave rectification scheme is obtained, with a significant increase in electrical modulation bandwidth when increasing the DC-current for the entire current range of the devices. Optical measurements by means of FTIR-spectroscopy and a heterodyne beating experiment reveal the presence of a resonance peak, due to coupling of the lasing DFB- with its neighboring below-threshold Fabry-Pérot-(FP-)mode, when modulating around the cavity roundtrip frequency. This resonance is modeled by a 2-mode Maxwell-Bloch formalism. It enhances only one sideband and consequently leads to the first experimental observation of the single-sideband regime in such kind of devices.
我们展示了常规4.5微米单模发射分布反馈(DFB)量子级联激光器(QCL)瞬态行为的电学和光学特性以及理论建模。低残余电容与高频优化的三端共面波导配置相结合,分别实现了高达23.5 GHz(光学)和26.5 GHz(电学)的调制频率。在微波整流方案中获得了6.6 GHz的最大3 dB截止值,并且在器件的整个电流范围内增加直流电流时,电调制带宽显著增加。通过傅里叶变换红外光谱(FTIR)和外差拍频实验进行的光学测量表明,当围绕腔往返频率进行调制时,由于激射DFB与其相邻的低于阈值的法布里 - 珀罗(FP)模式耦合,会出现一个共振峰。这种共振由双模式麦克斯韦 - 布洛赫形式主义建模。它仅增强一个边带,因此导致了此类器件中单边带 regime的首次实验观测。