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76 efficient cryogenically-cooled eyesafe diode laser for resonant pumping of Er-doped gain media

机译:76%高效冷冻冷却的眼睛激光器,用于谐振泵送ER掺杂增益介质

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There is great interest in the development of high-power, high-efficiency InP-based broad area pump diode lasers operating in the 14xx-15xx nm band to be used for resonant-pumping of Er-doped solid state lasers. Cryogenic cooling of diode lasers can provide great benefit to performance, arising from the dramatic reduction in the threshold current and the increase in the diode's slope efficiency. These improvements are attributed to reduction in the non-radiative losses and leakage current associated with thermionic emission of carriers from the quantum well. This is, however, at the expense of a large increase in the diode voltage, limiting the power conversion efficiency at cryogenic temperatures. In this work, we report on the development of high-power, high-efficiency diode lasers and stacked arrays operating at 15xx-nm, which are specifically designed and optimized for operation at cryogenic temperatures. We show that the diode voltage defects under cryogenic operation can be greatly reduced through reducing the energy band offsets at the hetero-interface, and through material change to reduce the dopant ionization energy, effectively mitigating carrier freeze-out at low temperatures. Optical cavity designs and band engineering optimization are also explored for low intrinsic optical loss and low carrier leakage. A peak power conversion efficiency of >74% was demonstrated at a temperature of ~100K in a 15xx-nm single emitter. Record high peak conversion efficiency of 71% and peak power of > 500 W were also demonstrated in a stacked array, under QCW pulses of 1 ms and 10 Hz.
机译:对高功率,高效的基于INP的广域泵二极管激光器具有很大的兴趣,在14xx-15xx nm频段中操作,用于泵送ER掺杂的固态激光器。二极管激光器的低温冷却可以为性能提供极大的益处,从阈值电流的显着降低和二极管的斜率效率的增加产生了极大的益处。这些改进归因于与​​量子阱的载体的热离子发射相关的非辐射损耗和漏电流的降低。然而,这在二极管电压的大幅增加,限制了低温温度的功率转换效率。在这项工作中,我们报告了在15xx-nm下运行的高功率,高效二极管激光器和堆叠阵列的开发,该阵列在低温温度下专门设计和优化。我们表明,通过减小异质界面处的能带偏移,可以大大降低在低温操作下的二极管电压缺陷,并通过材料变化以减少掺杂剂电离能量,在低温下有效地减轻载体冻结。光学腔设计和带工程优化也用于低固有光学损失和低载体泄漏。在15xx-nm单个发射器中,在〜100k的温度下证明了> 74%的峰值功率转换效率。记录高峰转换效率为71%,峰值功率> 500 W的堆叠阵列也在1毫秒和10Hz的QCW脉冲下进行。

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