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首页> 外文期刊>Selected Topics in Quantum Electronics, IEEE Journal of >VECSEL Optimization Using Microscopic Many-Body Physics
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VECSEL Optimization Using Microscopic Many-Body Physics

机译:使用微观多体物理进行VECSEL优化

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Vertical external cavity surface-emitting lasers (VECSELs) are designed and analyzed using an approach based on fully microscopically computed material properties like gain and carrier recombination rates. Very good agreement between theoretical predictions and measured characteristics of the realized devices is demonstrated. The high accuracy of the theoretical models allows one to determine even small deviations between the nominal designs and actual realizations. The models are used to find optimization strategies. It is shown how the external efficiency can be strongly improved using surface coatings that reduce the pump reflection while retaining the gain-enhancing cavity effects at the lasing wavelength. It is shown how incomplete pump absorption can be detrimental to the device performance and how this problem can be reduced using optimized distributed Bragg reflectors and metallization layers. A combination of improved metallization and use of such a coating more than doubles the external efficiency and maximum power for a realized VECSEL operating at 1010 nm and the theory indicates that further significant improvements are possible.
机译:使用基于完全微观计算的材料特性(例如增益和载流子复合率)的方法来设计和分析垂直外腔表面发射激光器(VECSEL)。演示了理论预测与实现的器件的测量特性之间的很好的一致性。理论模型的高精度允许人们确定名义设计与实际实现之间的很小偏差。这些模型用于查找优化策略。它显示了如何使用减少泵浦反射并同时在激光波长处保持增益增强腔效应的表面涂层来极大地改善外部效率。它显示了不完全的泵浦吸收会如何损害器件性能,以及如何使用优化的分布式布拉格反射器和金属化层来减少此问题。改进的金属化和使用这种涂层的结合,使在1010 nm下工作的已实现VECSEL的外部效率和最大功率提高了一倍以上,该理论表明,进一步的重大改进是可能的。

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